What class of chemicals is incompatible with chromates, peroxides and permanganates?
Acids
Bases
Oxidizing agents
Reducing agents

Answers

Answer 1

Chromates, peroxides, and permanganates are typically reactive oxidizing agents, which have a tendency to accept electrons and undergo reduction in a chemical reaction. The class of chemicals that is incompatible with them is reducing agents. Therefore the correct option is option D.

In a chemical reaction, reducing agents are compounds that have a propensity to transfer electrons and proceed through oxidation. Compatibility problems with reducing agents can lead to fire, explosion, the production of hazardous fumes, or the generation of heat.

Although chromates, peroxides, and permanganates can also react with acids and bases, these particular substances are oxidising agents, which are normally incompatible with reducing agents. Therefore the correct option is option D.

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Related Questions

what is basaltic lavas?

Answers

Basaltic lavas are a type of lava that is low in viscosity, rich in iron and magnesium, and primarily composed of basaltic magma. They are commonly found in volcanic regions around the world and are characterized by their dark color and fine-grained texture.

Basaltic lavas are a type of lava that is primarily composed of basaltic magma. Basaltic magma is a type of magma that has low viscosity and is rich in iron and magnesium. This type of magma is produced by melting the mantle, which is the layer beneath the Earth's crust.

When basaltic magma reaches the Earth's surface, it flows out as a thin and runny lava. Basaltic lava flows are typically characterized by their low viscosity and can travel long distances before cooling and solidifying. Basaltic lavas are usually dark in color and have a fine-grained texture.

Basaltic lavas are some of the most common types of lavas found on Earth. They can be found in many volcanic regions, including Hawaii, Iceland, and the Columbia River Plateau in the United States. Basaltic lava flows have been known to be dangerous, especially if they flow rapidly and unpredictably.

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whats the answer to this. me and my class are all stuck

Answers

The iodide ion is denoted by the sign I-. This ion has a charge of -1, as indicated by the minus sign, which implies it has one more electron than the iodine atom (I), which is neutral.

Iodine (I), whose atomic number is 53, has 53 electrons in its neutral state. The iodide ion, which has a charge of -1, is created when an iodine atom gains one electron. The iodide ion (I-) therefore has 54 electrons :

53 electrons from the neutral iodine atom + 1 additional electron gained when it becomes an ion = 54 electrons in the iodide ion.

Всё легко и просто, удачи.

Answer:

The answer would be 8 electrons

As the element would want to complete its valence shell with "8 electrons", it will gain electrons hence attaining a negative charge

The "negative sign only" also shows that this element gained 1 electron so we can conclude that this element is in group VII A (Group 7 A elements gain 1 electron to complete their valence shell)

What category of glove material provides the most protection against the widest range of chemicals?
Synthetic polymers
Naturally polymers
Laminates
Polyvinyl chloride and polyvinyl alcohol

Answers

The category of glove material that provides the most protection against the widest range of chemicals is synthetic polymers.

These gloves are made from materials like nitrile, neoprene, and butyl rubber which offer superior protection against a variety of chemicals. They are also resistant to punctures, tears, and abrasions, making them ideal for use in environments where there is a high risk of exposure to hazardous chemicals. Additionally, synthetic polymer gloves offer better comfort and flexibility compared to other materials, allowing for greater dexterity and ease of use. The combination of protection and customization makes synthetic polymers the ideal choice for providing protection against the widest range of chemicals.

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What is the density of water in lb/m3 (pounds per cubic meter)? (Hint: 1 lb = 454 g)

Answers

The density of water in lb/m3 is 62.4279.The density of water is an important physical property of this substance.

The density of water is defined as the mass per unit volume of water. In other words, it is the amount of mass contained within a particular volume of water. This property is particularly important in applications such as calculating the buoyancy of objects in water.
The density of water is typically expressed in kilograms per cubic meter (kg/m3) or in grams per milliliter (g/mL). However, since the question asks for the density of water in lb/m3 (pounds per cubic meter), we need to convert the units.
One pound (lb) is equal to 454 grams (g). Therefore, we can use the conversion factor of 1 lb/m3 = 16.0185 kg/m3. Using this conversion factor, we can calculate the density of water in lb/m3 as:
Density of water = 1000 kg/m3 * (\frac{1 lb }{454 g}) * (\frac{1 m3 }{ 1000 L}) * (\frac{1000 L }{ 1 m3}) * (\frac{1 lb }{ 16.0185 kg})
Density of water = 62.4279 lb/m3
Therefore, the density of water in lb/m3 is 62.4279.

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What types of polyatomic ions (in order by charge)

Answers

There are several types of polyatomic ions, and they are typically listed in order by charge. polyatomic ion is a molecule made up of two or more atoms that are covalently bonded

Polyatomic ions can be classified according to their charge, which can be positive or negative. The most common polyatomic ions with a positive charge are ammonium (NH4+), hydronium (H3O+), and mercury (I) (Hg2 2+). The most common polyatomic ions with a negative charge include hydroxide (OH-), nitrate (NO3-), sulfate (SO4 2-), and phosphate (PO4 3-).

In general, polyatomic ions with a higher charge tend to be less stable than those with a lower charge, and they can also have a greater impact on the chemical properties of the compounds in which they are found. Understanding the types of polyatomic ions and their properties is an important aspect of studying chemistry and related fields.

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Which of the following elements could be prepared by electrolysis of the aqueous solution shown?
Multiple Choice
Sodium from Na3PO4(aq)
Sulfur from K2S04(ed)
Oxygen from H2SO4(aq)
Potassium from KCl(aq)
Nitrogen from AgNO3(aq)

Answers

Sodium from Na3PO4(aq) could be prepared by electrolysis of the aqueous solution shown. Based on the provided options, the element that could be prepared by electrolysis of the aqueous solution shown

Potassium from KCl(aq)
Here's why:
- Sodium from Na3PO4(aq) and Nitrogen from AgNO3(aq) are not possible because these ions are more stable in solution than undergoing electrolysis.
- Sulfur from K2S04(ed) is not valid as the compound should be K2SO4(aq) and even then, it would produce oxygen at the anode instead of sulfur.
- Oxygen from H2SO4(aq) can be prepared through electrolysis, but this is not an element directly obtained from the compound.
Potassium from KCl(aq) can be prepared by electrolysis. During this process, K+ ions are reduced to potassium metal at the cathode, and Cl- ions are oxidized to chlorine gas at the anode.

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What is the most common monomer arrangement for PVC, PP, and PS?

Answers

The most common monomer arrangements for PVC, PP, and PS are vinyl chloride for PVC, propylene for PP, and styrene for PS.



1. PVC (Polyvinyl Chloride): The most common monomer arrangement for PVC is vinyl chloride (CH2=CHCl). In the polymerization process, these monomers are linked together to form a long chain of repeating units.

2. PP (Polypropylene): The most common monomer arrangement for PP is propylene (CH2=CH-CH3). Similar to PVC, these monomers are polymerized to form a long chain of repeating units.

3. PS (Polystyrene): The most common monomer arrangement for PS is styrene (C6H5-CH=CH2). The styrene monomers are connected together to create a long chain of repeating units during polymerization.

In summary, the most common monomer arrangements for these three types of plastic polymers are vinyl chloride for PVC, propylene for PP, and styrene for PS.

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consider these molecules. which is polar? consider these molecules. which is polar? bf3 co2 bh3 bef2 ci4 ch3cl

Answers

The polar molecules are BeF2 and CH3Cl, while the nonpolar molecules are BF3, CO2, BH3, and CI4.

In order to determine whether a molecule is polar or nonpolar, we need to consider the electronegativity difference between the atoms in the molecule and the molecule's geometry.BF3 (boron trifluoride) has a trigonal planar geometry with three fluorine atoms arranged symmetrically around a central boron atom. Since the electronegativity of boron is lower than that of fluorine, the bond dipoles cancel each other out, resulting in a nonpolar molecule.CO2 (carbon dioxide) has a linear geometry with two oxygen atoms arranged symmetrically around a central carbon atom. Since the electronegativity of oxygen is higher than that of carbon, the bond dipoles point towards the oxygen atoms, but they cancel each other out, resulting in a nonpolar molecule.BH3 (boron trihydride) has a trigonal planar geometry with three hydrogen atoms arranged around a central boron atom. Since boron has a lower electronegativity than hydrogen, the bond dipoles point towards boron, but since the molecule is symmetric, they cancel each other out, resulting in a nonpolar molecule.BeF2 (beryllium difluoride) has a linear geometry with two fluorine atoms arranged symmetrically around a central beryllium atom. Since beryllium has a low electronegativity compared to fluorine, the bond dipoles point towards fluorine, and the molecule is polar.CI4 (carbon tetrachloride) has a tetrahedral geometry with four chlorine atoms arranged symmetrically around a central carbon atom. Since the bond dipoles are pointing in opposite directions and cancel each other out, the molecule is nonpolar.CH3Cl (chloromethane) has a tetrahedral geometry with a chlorine atom and three hydrogen atoms arranged around a central carbon atom. Since the bond dipoles are pointing towards the chlorine atom, the molecule is polar.In summary, the polar molecules are BeF2 and CH3Cl, while the nonpolar molecules are BF3, CO2, BH3, and CI4.

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sulfuric acid reacts with sodium hydroxide what mass h2 so4 would be require to react with .75 molnaoh

Answers

When sulfuric acid reacts with sodium hydroxide, it undergoes a neutralization reaction to produce sodium sulfate and water. The balanced chemical equation for this reaction is: H2SO4 + 2NaOH → Na2SO4 + 2H2O From the balanced chemical equation, we can see that 1 mole of sulfuric acid reacts with 2 moles of sodium hydroxide.

Therefore, if we have 0.75 moles of sodium hydroxide, we would need half as many moles of sulfuric acid, which is 0.375 moles. To determine the mass of sulfuric acid required, we need to use its molar mass, which is 98.08 g/mol. Therefore, the mass of sulfuric acid required would be: 0.375 mol x 98.08 g/mol = 36.78 g So, 36.78 grams of sulfuric acid would be required to react with 0.75 moles of sodium hydroxide. It's important to note that handling sulfuric acid and sodium hydroxide requires caution, as they are both highly corrosive and can cause severe burns and damage to the eyes and skin. Proper safety precautions should be taken when handling these chemicals.

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Determine the volume of a 0.3M solution containing 0.511mol of Na2CO3?


Please i need help

Answers

1.70 liters is the volume of a 0.3 M Na2CO3 solution containing 0.511 moles of Na2CO3.

To determine the solution's volume

The equation is as follows:

Molarity x Volume of Solution (in Liters) = Mole of Solute.

To determine the solution's volume, which contains 0.511 moles of Na2CO3 in a 0.3 M Na2CO3 solution.

Volume of solution (in liters) = moles of solute / molarity after rearranging the formula

When we enter the values we have:

volume of solution (in liters) = 0.511 mol / 0.3 M

volume of solution (in liters) = 1.70 L

Therefore, 1.70 liters is the volume of a 0.3 M Na2CO3 solution containing 0.511 moles of Na2CO3.

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Question 48
Aeration is advantageous in the treatment of water containing:
a. Phosphorus and manganese
b. Dissolved iron and manganese
c. Magnesium and iron
d. Phosphorus and iron

Answers

Aeration is a process in which air is circulated through water to increase oxygen levels and remove impurities. Aeration is advantageous in the treatment of water containing dissolved iron and manganese.

When water is aerated, the dissolved iron and manganese are oxidized and converted into solid particles, which can be filtered out of the water. Aeration is also effective in removing excess phosphorus from water. Phosphorus can cause eutrophication, which is the excessive growth of algae and other aquatic plants. This can lead to the depletion of oxygen levels in the water and harm aquatic life. Aeration increases the oxygen levels in the water, which helps to break down and remove excess phosphorus. Magnesium is a mineral that is essential for human health, and it is not typically removed during water treatment. However, high levels of magnesium in water can cause hardness, which can lead to plumbing problems. Aeration is not typically used to remove magnesium from water. In summary, aeration is advantageous in the treatment of water containing dissolved iron and manganese, as well as excess phosphorus.

Aeration is advantageous in the treatment of water containing dissolved iron and manganese (option b). Aeration is a water treatment process that involves exposing water to air to facilitate the removal of dissolved gases, metals, and other impurities.

In the case of dissolved iron and manganese, aeration helps to oxidize these elements, converting them from soluble to insoluble forms. The insoluble forms can then be removed more easily through sedimentation and filtration processes. By removing iron and manganese, aeration helps prevent issues such as staining, metallic taste, and discoloration in the treated water.

While aeration can also help to remove other contaminants like phosphorus, magnesium, and dissolved gases, its primary advantage lies in the treatment of water containing dissolved iron and manganese. Therefore, the most accurate answer for the given question is option b.

To summarize, the aeration process is especially beneficial for treating water that contains dissolved iron and manganese, as it converts these elements into insoluble forms that can be more easily removed during subsequent water treatment processes.

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A student attended an event at a traditional tea room that offered sugar cubes instead of sugar packets. She added two sugar cubes to a cup of hot tea. After she finished arinking the tea, she was surprised to see two small chunks of undissoived suger at the bottom of her cup. All the sugar dissolves in tea of the same temperature when added from a packet. Which of the following BEST explains why sugar remains undissolved from cubes but not from packets?

Answers

The reason why the sugar cubes do not dissolve is option B.

What is the effect of surface area on the dissolution of sugar cubes?

When the sugar cube is cut into smaller pieces as is the case with the sugar from the packets, the surface area-to-volume ratio increases, creating more surface area for the water molecules to interact with. The end effect is a faster rate of disintegration.

The dissolved sugar molecules diffuse more quickly from the surface of the smaller sugar particles into the water because of their higher surface area.

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calculate the pka for an acid with a ka value of 5.77 x 10-6. pay close attention to significant figures and use decimal notation when entering your answer

Answers

The pKa for an acid with a Ka value of 5.77 x 10⁻⁶ is approximately 5.24.

To calculate the pKa for an acid with a Ka value of 5.77 x 10⁻⁶, you will use the formula pKa = -log10(Ka). The Ka value is the acid dissociation constant, which measures the strength of an acid in a solution. A lower Ka value indicates a weaker acid, while a higher Ka value signifies a stronger acid. The pKa value is the negative logarithm of the Ka value, making it more convenient to work with and easier to compare acid strengths.

In this case, the Ka value is given as 5.77 x 10⁻⁶. To find the pKa, use the formula:

pKa = -log10(5.77 x 10⁻⁶)

Plug the Ka value into the formula and calculate:

pKa = -log10(5.77 x 10⁻⁶) ≈ 5.24

It is essential to pay close attention to significant figures and use decimal notation when entering your answer, as requested. In this example, the answer is reported with two decimal places, adhering to the significant figures present in the given Ka value.

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nalysis of cla 0.4892 g sample of the chromium compound was dissolved in water and excess silver nitrate was added to precipitate agcl. 1.0042 g of agcl was obtained. calculate the mass of cland then % cl- . show work below.

Answers

Mass of Chlorine is0.4963 g Cl- and percentage of chlorine is 101.44% the chromium compound was dissolved in water and excess silver nitrate was added

To solve this problem, we need to use the stoichiometry of the reaction between the chromium compound and silver nitrate to calculate the mass of chloride ion (Cl⁻) in the sample.
The balanced equation for the reaction is:
CrX + 2 AgNO₃ ⇔ Ag₂CrX₄ + 2 AgCl + 2 NO³⁻
where CrX represents the chromium compound and Ag₂CrX₄ represents a silver-chromium compound that remains in solution.
From the equation, we can see that 2 moles of AgCl are formed for each mole of CrX, so we can calculate the number of moles of Cl- in the sample as follows:
1.0042 g AgCl x (1 mol AgCl / 143.32 g AgCl) x (2 mol Cl- / 1 mol AgCl) = 0.01400 mol Cl-
Next, we can use the mass of the sample and the molar mass of CrX to calculate the number of moles of CrX:
0.4892 g CrX x (1 mol CrX / molar mass of CrX) = n mol CrX
We don't need to know the molar mass of CrX to solve the problem, since it will cancel out in the next step.
Finally, we can calculate the mass of Cl- in the sample and the percent Cl-:
Mass of Cl- = 0.01400 mol Cl- x (35.45 g/mol) = 0.4963 g Cl-
Percent Cl- = (0.4963 g Cl- / 0.4892 g sample) x 100% = 101.44%
The percent Cl- is greater than 100% because of a possible error in the weighing or the reaction, or because the sample may contain other sources of chloride ions. However, the calculation shows that most of the chlorine in the sample is present as Cl-.

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why do organisms have different ways of reproducting​

Answers

Reproduction variation is a natural propensity that paves the road for evolution. Variation is little in an asexually producing organism.

The majority of animals are diploid creatures (their somatic, or body, cells are diploid), and meiosis produces haploid reproductive (gamete) cells. The vast majority of animals reproduce sexually.

Reproduction variation is a natural propensity that paves the road for evolution. Variation is little in an asexually producing organism. Clones, or perfect replicas of an organism, are produced. But within a sexually reproducing organism, the likelihood of variation is relatively great.

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a scientist has 50 ml of a solution containing 2 grams (2000 milligrams) of potassium hydroxide. to this, she adds a solution containing 8 milligrams per ml of potassium hydroxide. a) compute the initial concentration of the solution, and the concentration when 350 ml of the new solution gets added. b) give a formula for the concentration (in mg/ml) of potassium hydroxide in terms of the volume of the new solution (in ml) added. c) compute how much should be added so the concentration is 10 mg/ml d) explain the meaning of the horizontal asymptote.

Answers

A Concentration = 12 mg/mL

B Concentration = (initial concentration x initial volume + added concentration x added volume) / total volume

C  375 mL of the new solution should be added to achieve a concentration of 10 mg/mL.

D In this case, the maximum concentration is 8 mg/mL

a) The initial concentration of the solution can be calculated as follows:

Concentration = mass / volume

Concentration = 2 g / 50 mL

Concentration = 40 mg/mL

When 350 mL of the new solution is added, the total volume becomes 400 mL. The amount of potassium hydroxide in the new solution is:

Amount = concentration x volume

Amount = 8 mg/mL x 350 mL

Amount = 2800 mg

The total amount of potassium hydroxide in the final solution is:

Total amount = 2000 mg + 2800 mg

Total amount = 4800 mg

The final concentration can be calculated as:

Concentration = total amount / total volume

Concentration = 4800 mg / 400 mL

Concentration = 12 mg/mL

b) The formula for the concentration (in mg/mL) of potassium hydroxide in terms of the volume of the new solution (in mL) added can be expressed as:

Concentration = (initial concentration x initial volume + added concentration x added volume) / total volume

c) To achieve a concentration of 10 mg/mL, we can rearrange the formula as follows:

Added volume = (total volume x desired concentration - initial concentration x initial volume) / added concentration

Substituting the given values, we get:

Added volume = (400 mL x 10 mg/mL - 40 mg/mL x 50 mL) / 8 mg/mL

Added volume = 375 mL

Therefore, 375 mL of the new solution should be added to achieve a concentration of 10 mg/mL.

d) The horizontal asymptote represents the maximum concentration that can be achieved by continuously adding the new solution. In this case, the maximum concentration is 8 mg/mL, which is the concentration of the new solution being added. This is because no matter how much new solution is added, the concentration cannot exceed the concentration of the added solution.

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Problem 2: Predict the product and provide a step-by-step mechanism for the following reactions. Show complete arrow pushing to indicate electron flow in each of these steps and specify what are intermediates and product(s) clearly.a) NaOEt EtOHb) 1) NaOEt, EtOH 2) H+/H2O

Answers

The products of both reactions are alcohols and ketones or aldehydes, respectively. The intermediates are alkoxide and enolate, respectively.

For problem 2a, the reaction involves the deprotonation of EtOH by NaOEt to form an alkoxide intermediate. This alkoxide intermediate then undergoes nucleophilic substitution with the electrophilic carbon in the carbonyl group of an aldehyde or ketone to form the corresponding alcohol product.
Step 1: Deprotonation of EtOH by NaOEt to form an alkoxide intermediate.
[tex]EtOH + NaOEt → Et Na+[/tex] [tex]H_{2} O[/tex]
Step 2: Nucleophilic attack of the alkoxide intermediate on the carbonyl carbon of the aldehyde or ketone.
[tex]RCHO / RCOR' + EtO- Na+ → RCH(OEt) / RCO[/tex]([tex]CH_{2} CH_{3}[/tex])[tex]Na+[/tex]


For problem 2b, the reaction involves the formation of an enolate intermediate followed by protonation to form the corresponding ketone or aldehyde product.
Step 1: Deprotonation of the alpha carbon of the ketone or aldehyde by NaOEt to form the enolate intermediate.
[tex]RCHO / RCOR' + NaOEt → RCH(OEt)[/tex]/[tex]RCO([/tex][tex]CH_{2} CH_{3}[/tex][tex])Na+[/tex]
Step 2: Protonation of the enolate intermediate by H+/[tex]H_{2} O[/tex]to form the corresponding ketone or aldehyde product.

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Choose the electron transition which will absorb the photon of smallest ν.
n = 1 to n = 3
n = 4 to n = 5
n = 6 to n = 5
n = 4 to n = 2
n = 4 to n = 3

Answers

The electron transition that will absorb the photon of smallest frequency (ν) is n = 6 to n = 5, as it involves the smallest energy difference between the energy levels.

When an electron in an atom absorbs a photon, it moves to a higher energy level or orbital. The energy of the photon must match the energy difference between the initial and final energy levels. The frequency (ν) of the photon is directly proportional to its energy (E), and inversely proportional to its wavelength (λ). The electron transition that absorbs the photon of smallest frequency involves the smallest energy difference between the energy levels, which is n = 6 to n = 5. This means that the wavelength of the absorbed photon will be relatively longer compared to the other transitions listed. Understanding these electron transitions is important for many applications, such as spectroscopy, lasers, and quantum computing.

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Translate the words into formulas, predict the product, & balance the equations. Include states of matter.

1) Solid zinc metal reacts with sulfuric acid

2) Magnesium nitrate reacts in solution with potassium hydroxide

Answers

1. Solid zinc metal reacts with sulfuric acid

Translation: Zinc (Zn) + Sulfuric acid (H2SO4)

Balanced equation: Zn(s) + H2SO4(aq) → ZnSO4(aq) + H2(g)

Product prediction: Zinc sulfate (ZnSO4) and hydrogen gas (H2)

2. Magnesium nitrate reacts in solution with potassium hydroxide

Translation: Magnesium nitrate [Mg(NO3)2] + Potassium hydroxide (KOH)

Balanced equation: Mg(NO3)2(aq) + 2KOH(aq) → Mg(OH)2(s) + 2KNO3(aq)

Product prediction: Magnesium hydroxide (Mg(OH)2) and potassium nitrate (KNO3)

A balanced equation represents a chemical reaction in which the number of atoms of each element present in the reactants and products is equal. In other words, a balanced equation follows the law of conservation of mass, which states that matter cannot be created or destroyed, only transformed from one form to another.

The balanced equation is written using chemical formulas and coefficients. Chemical formulas represent the elements and compounds involved in the reaction, while coefficients indicate the number of each compound or element needed to balance the equation. Balancing an equation requires adjusting the coefficients of the reactants and products until the number of atoms of each element is the same on both sides of the equation.

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identify the configurations around the double bonds in the compound. you are currently in a labeling module. turn off browse mode or quick nav, tab to items, space or enter to pick up, tab to move, space or enter to drop.a large molecule contains three double bonds. in two of the double bonds the hydrogen atom is on opposite sides of the double bond and the other groups on the carbons are different. in the third double bond the groups are different on one carbon and the same on the second carbon. answer bank

Answers

The compound has E configuration for two double bonds and Z configuration for one double bond. The E configuration refers to hydrogen atoms on opposite sides of the double bond with different groups on the carbons, while the Z configuration has the same groups on one carbon and different groups on the other.

The configurations around the double bonds in the compound are:

E configuration for the two double bonds where the hydrogen atoms are on opposite sides of the double bond and the other groups on the carbons are different.

Z configuration for the double bond where the groups are different on one carbon and the same on the second carbon.

The configuration around a double bond is determined by the relative orientation of the substituents on each carbon of the double bond. If the substituents on each carbon are on opposite sides of the double bond, it is called a trans configuration.

If the substituents on each carbon are on the same side of the double bond, it is called a cis configuration.

In the given molecule, two of the double bonds have the hydrogen atoms on opposite sides of the double bond, which means they have a trans configuration. The other groups on the carbons are different, indicating that these double bonds are likely part of a larger molecule with different substituents.

In the third double bond, the groups on one carbon are different and the groups on the other carbon are the same, indicating a cis configuration.

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a macromolecule that can exist as linear or cyclized, where it has a 1:2:1 ratio of carbon, hydrogen and oxygen

Answers

A macromolecule that can exist as linear or cyclized, where it has a 1:2:1 ratio of carbon, hydrogen and oxygen is a carbohydrate, specifically a monosaccharide.

The typical formula for monosaccharides, which are the simplest type of carbohydrates, is (CH₂O)ₙ, where "n" denotes the number of carbon atoms in the molecule. They feature a 1:2:1 ratio of carbon, hydrogen, and oxygen atoms and can be linear or cyclic in structure. Monosaccharides include galactose, fructose, and glucose as examples.

It is a collection of biomolecules with atoms of carbon, hydrogen, and oxygen arranged in a 1:2:1 ratio. The simplest type of carbohydrates are called monosaccharides, and their molecular formula is (CH₂O)ₙ, where "n" denotes the number of carbon atoms in the molecule. Depending on how their hydroxyl groups are oriented, they can exist in linear or cyclic forms.

The majority of monosaccharides in aqueous solution are found in their cyclic forms, which have rings produced by the interaction of a carbonyl group and a hydroxyl group on the same molecule. Monosaccharides are a source of energy for living things due to their 1:2:1 ratio of carbon, hydrogen, and oxygen atoms. They are also crucial for numerous biological activities, such as cell signaling, recognition, and adhesion.

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3-methyl cyclohexene is reacted with hbr in ether as the solvent. classify the reaction, provide the product (0.5 point), iupac name for the product (0.5 points) and predict a mechanism for it. (2 points)

Answers

When 3-methyl cyclohexene reacts with HBr in ether as the solvent, the reaction is classified as an electrophilic addition reaction. Here's the step-by-step explanation for the product formation, IUPAC name, and mechanism:



1. Product Formation: The 3-methyl cyclohexene reacts with HBr, leading to the addition of a bromine atom to the less substituted carbon of the double bond. The resulting product is 1-bromo-3-methylcyclohexane.

2. IUPAC Name: The IUPAC name for the product is 1-bromo-3-methylcyclohexane.

3. Mechanism Prediction:
Step 1: The HBr molecule acts as an electrophile, and the alkene double bond in 3-methyl cyclohexene acts as a nucleophile. The nucleophile attacks the electrophilic hydrogen atom in HBr, forming a bond with it.
Step 2: The bromide ion (Br-) is released as a leaving group from the HBr molecule. This leads to the formation of a carbocation intermediate, with the positive charge on the less substituted carbon (secondary carbocation) of the cyclohexane ring.
Step 3: The bromide ion attacks the carbocation, forming a bond with the positively charged carbon atom. This results in the formation of the final product, 1-bromo-3-methylcyclohexane.
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Pressure conversions
145.53kPa to atm

Answers

Answer:

1.436atm

Explanation:

What class of chemicals is incompatible with azides, cyanides, hydrides, perchlorates and sulfides?
Acids
Bases
Oxidizing agents
Reducing agents

Answers

Azides, cyanides, hydrides, perchlorates, and sulfides are typically reactive reducing agents or oxidizing agents, which can donate or accept electrons and undergo chemical reactions. Therefore the correct option is option D.

Depending on the particular chemical, a different class of compounds may be incompatible with them.

Acids and cyanides and sulphides can combine to form the deadly gases hydrogen cyanide (HCN) and hydrogen sulphide (H2S). Additionally, they can react with perchlorates to produce heat and fumes that could ignite.Toxic gases like ammonia (NH3) or hydrogen sulphide (H2S) can be created when bases interact with hydrides and sulphides.Chlorates, perchlorates, and peroxides can react strongly with hydrides, sulphides, and azides, potentially igniting a fire or igniting an explosion.Oxidising substances like perchlorates, chlorates, and peroxides can react strongly with reducing substances like hydrides, sulphides, and azides, possibly igniting a fire or producing an explosion.

Therefore the correct option is option D.

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Which acid/base pair will give an equivalence point above a pH of 7?
I am a little fuzzy on this topic. I know NH3 and HCL will be below 7. So... My thinking is the answer should be NaOH and CH3COOH?
Thanks for the help :)
Select the correct answer below:
A---NaOH and HCl
B---NH3 and HCl
C---NH3 and CH3COOH
D---NaOH and CH3COOH

Answers

NaOH and CH3COOH will give an equivalence point above a pH of 7. NaOH is a strong base and CH3COOH is a weak acid. During titration, as NaOH is added to the solution containing CH3COOH, the pH gradually increases due to the neutralization of the acidic protons of CH3COOH by the hydroxide ions of NaOH.

The equivalence point is reached when all the acid has reacted with the base, resulting in salt and water. At this point, the solution is neutral (pH 7). However, since CH3COOH is a weak acid, the initial pH of the solution is lower than 7, and it gradually increases as NaOH is added. Therefore, NaOH and CH3COOH form an acid/base pair that gives an equivalence point above a pH of 7.

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Answer: NH3 and HCl is the answer

25. 00 mL of a HNO3 solution with a pH of 2. 12 is mixed with 25. 00 mL of a KOH solution with a PH of 12. 65. What is the pH of the final solution

Answers

The pH value of the final solution made from a mixing of 25.0 mL of HNO₃ solution with a pH of 2.12 and 25.00 mL of KOH solution with pH of 12.65, is equals to the 1.022.

The pH values are values which are calculated from taking the negative logarithm to base ten of hydrogen ions or hydroxide ions concentration of a substance. The pH scale usually from 1 to 14 where, pH = 7 represents neutral medium, pH < 7 represents acidic medium and pH > 7 represents basic medium. Now, we have a 25.00 mL of a

[tex]HNO_3[/tex] solution mixed with 25.00 mL of a KOH solution.

The pH value of acidic solution [tex]HNO_3[/tex] = 2.12 ( concentration of H⁺ ions)

pH value of basic solution, [tex]KOH[/tex] = 12.65 ( concentration of OH⁻ ions)

For solution, concentration of hydroxide ions = 12.65 - 2.12 = 10.53

Now, using pH formula, pH of final solution is written as pH = - log( 10.53)

= 1.022

Hence, required value is 1.022.

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Given the equation below and excess iron, what mass of hydrochloric acid would be required to make 0.92 moles of hydrogen gas? Round your answer to the nearest 0.01, and remember to include units and substance in your answer.

HCl + Fe --> FeCl2 + H2

Answers

To solve this problem, we need to use stoichiometry to determine the mass of HCl required to produce 0.92 moles of H2.

First, we need to determine the balanced chemical equation for the reaction between HCl and Fe:

2HCl + Fe --> FeCl2 + H2

This equation tells us that 2 moles of HCl react to produce 1 mole of H2.

So, if we want to produce 0.92 moles of H2, we will need:

(2 moles HCl / 1 mole H2) x (0.92 moles H2) = 1.84 moles HCl

Now we can use the molar mass of HCl to convert moles to grams:

1.84 moles HCl x 36.46 g/mol = 67.0 g HCl

Therefore, 67.0 g of HCl would be required to make 0.92 moles of hydrogen gas.

Based on the diagram which statement describes sexual reproduction

Answers

The male father produces sperms, which are male gametes. The female parent produces female gametes known as eggs. The zygote is created when the sperm and egg combine. This represents the sexual reproduction.

Merging the genetic material from two separate people of different sorts (sexes) to create new living things. In the majority of higher organisms, the male creates a small, mobile gamete that travels to the larger, stationary gamete generated by the female in order to fuse with it. This is sexual reproduction.

Following are the various steps that constitute animal sexual reproduction: The male father produces sperms, which are male gametes. The female parent produces female gametes known as eggs. The zygote is created when the sperm and egg combine. Fertilisation is the name given to this process.

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Balance the following equation in acidic solution using the lowest possible integers and give the coefficient of water. MnO4-(aq) + H2S(g) → Mn2+(aq) + HSO4-(aq) Please show how you got the answer. I already know that the answer is 12

Answers

The balanced reaction is written as 8H + MnO₄⁻ +11H ⁺ (aq)+ 5H₂S(g)⟶8Mn₂+(aq)+12H₂O(aq)+5HS₄⁻(aq). The cofficient of water is equals to 12.

A balanced reaction is a equation for a chemical reaction in which the number of atoms for each element in the reaction and the total charge are the same for both the reactant and the product sides m. We have a unbalanced chemical reaction, [tex]Mn{O_4}^-(aq) + H_2S(g) → Mn_2+(aq) + H{SO_4}^{-} (aq) \\ [/tex]

We have to balance the above reaction. Steps for balancing the reaction,

First, write the complete unbalanced reactionDivide unbalanced reaction into two half-reactionsBalance both the half oxidation and reduction reaction separatelyBalance all elements other than O and H by multiplying with an integerBalance O by H2Oaddition Balance H by adding H+ionsCharge balance by e− addition Add both the half-reactions such that charge on both sides can be cancelled out.

Oxidation half-reaction

H₂S(g)+4H₂O(aq)⟶HSO₄⁻(aq) + 9H⁺ aq)+8e⁻ (Charge balance)

Reduction half

H + MnO₄⁻ +7H⁺ (aq)+5e−⟶Mn₂⁺(aq)+4H₂O(aq) (Charge balance)

Hence, the required reaction is 8H + MnO₄⁻ +11H ⁺ (aq)+ 5H₂S(g)⟶8Mn₂+(aq)+12H₂O(aq)+5HS₄⁻(aq). (balanced chemical reaction)

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Consider the atom whose electron configuration is [Ne]3s23p1.
Write the one or two-letter symbol for the element.'
How many unpaired electrons are there in the ground state of this atom?

Answers

The one or two-letter symbol for the element is P. There is one unpaired electron in the ground state of this atom.

The electron configuration of the atom [Ne]3s23p1 indicates that it has a total of 15 electrons, with the first 10 being identical to the noble gas neon (symbol Ne).

The remaining five electrons occupy the 3s and 3p orbitals. Since the 3p orbital can hold up to six electrons, this atom has only one electron in the 3p orbital, which is unpaired. Therefore, there is only one unpaired electron in the ground state of this atom. This unpaired electron makes phosphorus (symbol P) a paramagnetic element, meaning it is attracted to a magnetic field.

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Final answer:

The atom with the electron configuration [Ne]3s23p1 is Aluminum (Al). In its ground state, this atom has one unpaired electron.

Explanation:

The atom whose electron configuration is [Ne]3s23p1 is Aluminum (Al). The electron configuration [Ne]3s23p1 indicates that there are 2 electrons in the 3s orbit and 1 electron in the 3p orbit. Therefore, the number of unpaired electrons in the ground state of this atom is one. This is because the two electrons in the 3s sublevel are paired and the single electron in the 3p sublevel remains unpaired.

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