A 5 M solution of 100 mL of glucose contains how many grams of glucose, molecular mass = 180 Daltons? a.1.0 b.90 c.360 d.6.02 x 10^23 e.180

Answers

Answer 1

100 mL of a 5 M solution of glucose contains 90 grams of glucose. The correct answer is c. 360 is not correct as it is not the result of any calculation.

To calculate the number of grams of glucose in 100 mL of a 5 M solution, we need to use the formula:

moles = concentration x volume

First, we need to convert the volume from mL to L:

100 mL = 0.1 L

Next, we can calculate the number of moles of glucose in the solution:

moles = 5 M x 0.1 L = 0.5 moles

Finally, we can use the molecular mass of glucose to convert moles to grams:

grams = moles x molecular mass

grams = 0.5 moles x 180 g/mol = 90 g

Therefore, 100 mL of a 5 M solution of glucose contains 90 grams of glucose. The correct answer is c. 360 is not correct as it is not the result of any calculation.

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Related Questions

List the physical properties that most metals have in common.

Answers

Answer:

Typical physical properties of metals :

high melting points.

good conductors of electricity.

good conductors of heat.

high density.

malleable.

ductile.

Explanation:

Answer:

-high melting points.

-good conductors of electricity.

-good conductors of heat.

-high density.

-malleable.

-ductile.

Explanation:

have a nice day

Nitric acid, HNO3(aq), can be manufacturer from ammonia using a series of three chemical reactions called the Ostwald process. The reactions involved are 4NH3(g) + 5O2(g) = 4NO(g) + 6H2O(g),
2NO(g) + O2(g) = 2NO2(g),
3NO2(g) + H2O(g) = 2HNO3(aq) + NO(g).
Determine the mass of nitric acid produced if 425 kg of ammonia reacts. Assume that plenty of oxygen is available.

Answers

Nitric acid (HNO3) is an odorless liquid that gives out yellow or red odors. Nitric acid exposure can irritate the eyes, skin, and mucous membranes.

Thus, It can also lead to dental erosion, delayed pulmonary edema, pneumonitis, and bronchitis.

The acid nitric is quite corrosive. Workers that are exposed to nitric acid risk injury. The dose, timeframe, and type of work determine the exposure level.Many industries use nitric acid.

It is employed in the production of explosives, dyes, and fertilizers. Additionally, nitric acid is utilized in the polymer sector. Many industries use nitric acid. It is employed in the production of explosives, dyes, and fertilizers.

Thus, Nitric acid (HNO3) is an odorless liquid that gives out yellow or red odors. Nitric acid exposure can irritate the eyes, skin, and mucous membranes.

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if you have 10 grams of a substance that decays with a half-life of 14 days, then how much will you have after 70 days? responses 0.10 g 0.10 g 0.313 g 0.313 g 1.25 g 1.25 g 2.50 g

Answers

The half-life of a substance is the amount of time it takes for half of the substance to decay. In this case, the substance has a half-life of 14 days.

After 14 days, half of the substance will decay, leaving you with 5 grams.

After another 14 days (28 days total), half of the remaining 5 grams will decay, leaving you with 2.5 grams.

After another 14 days (42 days total), half of the remaining 2.5 grams will decay, leaving you with 1.25 grams.

After another 14 days (56 days total), half of the remaining 1.25 grams will decay, leaving you with 0.625 grams.

Finally, after another 14 days (70 days total), half of the remaining 0.625 grams will decay, leaving you with 0.313 grams.

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After 70 days, we will have 0.313 g of the substance left.  Hence, The correct response is 0.313 g.

The half-life of the substance is 14 days, which means that after 14 days, half of the substance will have decayed. Therefore, after 28 days, another half of the remaining substance will decay, leaving us with a quarter of the original amount. After 42 days, half of the remaining substance will decay again, leaving us with an eighth of the original amount. After 56 days, half of the remaining substance will decay once more, leaving us with a sixteenth of the original amount. Finally, after 70 days, another half of the remaining substance will decay, leaving us with a thirty-second of the original amount.

To calculate how much we have left after 70 days, we can use the formula:

amount remaining = (original amount) x (0.5)^(time elapsed / half-life)
Plugging in the values, we get:
amount remaining = (10 g) x (0.5)^(70 / 14) = 10 g x 0.03125 = 0.313 g


Therefore, after 70 days, we will have 0.313 g of the substance left.
The correct response is 0.313 g.

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the reaction between nh3 and f2 produces n2f4 and hf: 2 nh3 5 f2 n2f4 6 hf what is the number of moles of f2 required to produce 240 g of hf?

Answers

10 moles of F2 are required to produce 240 g of HF ,By using formula of mole when mass and molar mass are given

mole=mass/molar mass and stoichiometry

To determine the number of moles of F2 required to produce 240 g of HF, follow these steps:
1. Calculate the moles of HF produced:
Divide the mass of HF (240 g) by its molar mass (20.01 g/mol for HF): 240 g / 20.01 g/mol ≈ 12 moles of HF
2. Use the stoichiometry of the balanced equation:
The balanced equation shows that 6 moles of HF are produced from 5 moles of F2: 2 NH3 + 5 F2 → N2F4 + 6 HF
3. Calculate the moles of F2 required:
Using the stoichiometry, set up a proportion to find the moles of F2 needed: (12 moles HF) * (5 moles F2 / 6 moles HF) = 10 moles of F2
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how many valence electrons does bromine (br, atomic no. = 35) have?

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The number of valence electrons in bromine (Br, atomic number = 35) is 7. Valence electrons are the electrons present in the outermost energy level or shell of an atom.


Bromine (Br), with an atomic number of 35, has 7 valence electrons. In the case of bromine, it belongs to Group 17 of the periodic table, also known as the halogens. Group 17 elements have a total of 7 valence electrons since they are one electron short of having a full octet.

Bromine's electron configuration is 1s² 2s² 2p⁶ 3s² 3p⁶ 4s² 3d¹⁰ 4p⁵, and the outermost shell, the fourth energy level (n=4), contains 5 electrons. Among them, the outermost 4p subshell holds 5 electrons, with the remaining 2 electrons in the 4s subshell.

These 7 valence electrons participate in chemical reactions and determine bromine's chemical behavior and bonding properties. So, bromine has 7 valence electrons.

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what is the approximate f−b−f bond angle in the bf3 molecule?

Answers

The approximate F-B-F bond angle in the BF3 molecule is 120 degrees.

To explain, BF3 (boron trifluoride) has a trigonal planar geometry. This molecular geometry results from boron having three bonding electron pairs and no lone pairs.

Due to the absence of lone pairs and the symmetrical distribution of fluorine atoms around the boron atom, the F-B-F bond angle is evenly spaced.

In a trigonal planar geometry, the angles between the bonded atoms are approximately 120 degrees, ensuring minimal electron repulsion.

In summary, the F-B-F bond angle in the BF3 molecule is approximately 120 degrees,

resulting from its trigonal planar geometry and symmetrical distribution of fluorine atoms around the central boron atom.

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IQ2.
Some electrode potential data are shown.
Zn²+ (aq) + 2 e → Zn(s)
Pb²+ (aq) + 2 e → Pb(s)

E = -0.76 V
E = -0.13 V

Which is a correct statement about this cell?

Zn(s)| Zn²+ (aq)||Pb²+ (aq)|Pb(s)

A Electrons travel in the external circuit from zinc to lead.

B The concentration of lead(II) ions increases.

C The maximum EMF of the cell is 0.89 V

D Zinc is deposited.

Answers

Answer:

Explanation:

The correct statement about this cell is:

A) Electrons travel in the external circuit from zinc to lead.

This is because the electrode potential of zinc is lower than that of lead. In a galvanic cell, the electron flow goes from the negative electrode (anode), which is where oxidation occurs, to the positive electrode (cathode), where reduction occurs. In this case, the anode is the zinc electrode and the cathode is the lead electrode. Since the zinc electrode has a more negative electrode potential, it is where oxidation occurs and electrons are released, and these electrons travel in the external circuit to the lead electrode, where reduction occurs.

For each of the following unbalanced equations, calculate how
many moles of the second reactant would be required to react
completely with 0.557 grams of the first reactant.
a. Al(s) + Br₂(1)→ AlBr3(s)
b. Hg(s) + HCIO4(aq) → Hg(ClO4)2(aq) + H₂(g)
c. K(s) + P(s) → K3P(s)
d. CH4(g) + Cl₂(g) → CCl4(1) + HCl(g)

Answers

a. 0.0311 mol of Br₂ is required to react completely with 0.557 grams of Al.

b.  0.00556 mol of HClO₄ is required to react completely with 0.557 grams of Hg.

c.  0.1078 mol of K is required to react completely with 0.557 grams of P.

d. 0.0694 mol of Cl₂ is required to react completely with 0.557 grams of CH₄.

Calculating the moles

a. Al(s) + Br₂(l) → AlBr₃(s)

The balanced equation is:

2Al(s) + 3Br₂(l) → 2AlBr₃(s)

The molar mass of Al is 26.98 g/mol, so 0.557 g of Al is equivalent to:

0.557 g Al × 1 mol Al / 26.98 g Al = 0.0207 mol Al

According to the balanced equation, the stoichiometric ratio of Al to Br₂ is 2:3. This means that 2 moles of Al react with 3 moles of Br₂. Therefore, to completely react with 0.0207 mol of Al, we need:

0.0207 mol Al × 3 mol Br₂ / 2 mol Al

= 0.0311 mol Br₂

b. Hg(s) + HClO₄(aq) → Hg(ClO₄)₂(aq) + H₂(g)

The balanced equation is:

Hg(s) + 2HClO₄(aq) → Hg(ClO₄)₂(aq) + H₂(g)

The molar mass of Hg is 200.59 g/mol, so 0.557 g of Hg is equivalent to:

0.557 g Hg × 1 mol Hg / 200.59 g Hg

= 0.00278 mol Hg

From the balanced equation, the stoichiometric ratio of Hg to HClO₄ is 1:2. This means that 1 mole of Hg reacts with 2 moles of HClO₄. Therefore, to completely react with 0.00278 mol of Hg, we need:

0.00278 mol Hg × 2 mol HClO₄ / 1 mol Hg

= 0.00556 mol HClO₄

c. K(s) + P(s) → K₃P(s)

The balanced equation is:

6K(s) + P₄(s) → 2K₃P(s)

The molar mass of P is 30.97 g/mol, so 0.557 g of P is equivalent to:

0.557 g P × 1 mol P / 30.97 g P

= 0.01797 mol P

From the balanced equation, the stoichiometric ratio of P to K is 1:6. This means that 1 mole of P reacts with 6 moles of K. Therefore, to completely react with 0.01797 mol of P, we need:

0.01797 mol P × 6 mol K / 1 mol P

= 0.1078 mol K

So, 0.1078 mol of K is required to react completely with 0.557 grams of P.

d. CH₄(g) + Cl₂(g) → CCl₄(l) + HCl(g)

The balanced equation is:

CH₄(g) + 2Cl₂(g) → CCl₄(l) + 2HCl(g)

The molar mass of CH₄ is 16.04 g/mol, so 0.557 g of CH₄ is equivalent to:

0.557 g CH₄ × 1 mol CH₄ / 16.04 g CH₄

= 0.0347 mol CH₄

From the balanced equation, the stoichiometric ratio of CH₄ to Cl₂ is 1:2. This means that 1 mole of CH₄ reacts with 2 moles of Cl₂. Therefore, to completely react with 0.0347 mol of CH₄, we need:

0.0347 mol CH₄ × 2 mol Cl₂ / 1 mol CH₄

= 0.0694 mol Cl₂

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c. Seismic waves are refracted and _____________ at two distinct boundaries within the Earth.

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Seismic waves are refracted and reflected at two distinct boundaries within the Earth, known as the Mohorovičić discontinuity (Moho) and the core-mantle boundary (CMB). The Moho is the boundary between the Earth's crust and mantle, where seismic waves change velocity and direction due to the difference in density between the two layers. This boundary is important for understanding the structure and composition of the Earth's crust and upper mantle.


The CMB is the boundary between the Earth's mantle and core, where seismic waves experience a drastic increase in velocity and are refracted and reflected. This boundary is also important for understanding the Earth's interior and its dynamics, such as the movement of the Earth's magnetic field and the generation of earthquakes and volcanic activity.
The refracting and reflecting of seismic waves at these two distinct boundaries provide valuable information for scientists studying the Earth's interior. By analyzing the behavior of seismic waves, they can gain insights into the composition and structure of the Earth's layers, as well as the processes that occur within them. The study of seismic waves has contributed greatly to our understanding of the Earth's interior and continues to be a valuable tool for scientific research.

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_____ is the most abundant cation in the extracellular fluid; proper levels of this ion are critical for nerve impulse conduction and maintenance of _____.

Answers

The most abundant cation in the extracellular fluid is sodium (Na+). Proper levels of sodium are critical for nerve impulse conduction and the maintenance of fluid balance in the body.

Sodium is an essential electrolyte that plays a crucial role in various physiological processes. It is the most abundant cation in the extracellular fluid, which includes blood plasma and interstitial fluid.

The concentration of sodium in the extracellular fluid is tightly regulated and maintained through a complex system involving hormones, the kidneys, and other organs.

One of the most important functions of sodium is its role in nerve impulse conduction. Sodium ions are involved in generating and transmitting electrical signals along nerve cells, allowing for communication between different parts of the body.

Proper levels of sodium are also critical for the maintenance of fluid balance in the body. Sodium ions work together with other electrolytes, such as potassium and chloride, to regulate the movement of water in and out of cells and maintain proper hydration levels.

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draw the lewis structure for the ionic compound that forms from mg and f.

Answers

The Lewis structure for the ionic compound formed from Mg and F is Mg^2+ + 2F^-.

most acidic substances (hydrogen ions) originate as by-products of cellular metabolism. T/F

Answers

True, most acidic substances (hydrogen ions) originate as by-products of cellular metabolism.

Cellular metabolism is the set of chemical reactions that occur within a cell to sustain life. These reactions are vital for the growth, development, and maintenance of the cell and the organism as a whole. Cellular metabolism involves two main processes: catabolism and anabolism.

Catabolism is the breakdown of complex molecules into simpler ones, which releases energy that can be used by the cell. The most important catabolic pathway is cellular respiration, which converts glucose and other nutrients into carbon dioxide, water, and energy in the form of ATP.

Anabolism, on the other hand, is the synthesis of complex molecules from simpler ones. This process requires energy, which is supplied by ATP produced during catabolism. Anabolic pathways include the synthesis of proteins, nucleic acids, and lipids.

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T/F: in a titration, the indicator is used to signal when the endpoint has been reached.

Answers

The given statement "In a titration, an indicator is added to the solution being titrated to signal when the endpoint has been reached." is true because the endpoint is the point at which the titrant has completely reacted with the analyte.


An indicator is a substance that undergoes a visible change, such as a color change, at a specific point in the titration process. This change occurs when the stoichiometrically equivalent amounts of the reactants have reacted, indicating that the desired reaction has been completed.

The indicator is chosen based on its ability to undergo a noticeable and distinct color change within a specific pH range or at a specific point in the titration. It allows the experimenter to visually detect when the endpoint, or the point of complete reaction, has been achieved. This information is crucial for accurately determining the concentration of the unknown analyte solution being titrated.

Therefore, in titration, the indicator serves as a visual signal for the endpoint of the reaction.

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Select the correct set of products for the following unbalanced reaction. Ba(OH)2(aq) + HNO3(aq) → O No reaction occurs. O Ba(NO3)2(aq) + 2H2O(1) O BaNz(s) + 2H2O(1) O Ba, O(s) + NO2(g) + H2O(1) O Ba(s) + H2(g) + NO2(8)

Answers

The balanced chemical equation is Ba(OH)2(aq) + 2HNO3(aq) → Ba(NO3)2(aq) + 2H2O(l). This means that when barium hydroxide reacts with nitric acid, it produces barium nitrate and water.

To balance the given unbalanced reaction, we need to ensure that the same number of atoms of each element appear on both the reactant and product sides. In this case, we have one barium (Ba) atom, two hydroxide (OH) ions, one nitric acid (HNO3) molecule, and one oxygen (O) molecule on the reactant side. On the product side, we have one barium (Ba) atom, two nitrate (NO3) ions, and two water (H2O) molecules. To balance the equation, we need to add one more nitrate (NO3) ion to the product side. Therefore, the correct set of products is Ba(NO3)2(aq) + 2H2O(l).

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how many milliliters of 2.00M HCL must be added to neutralize the following:
A mixture of 0.160 M HNO3 (100.0 mL) and 0.100 M KOH (400.0 mL)?

Answers

To neutralize the mixture of 0.160 M HNO3 and 0.100 M KOH, 67.0 mL of 2.00 M HCl must be added.

The balanced chemical equation for the neutralization reaction between HNO3 and KOH is:

HNO3 + KOH → KNO3 + H2O

From the balanced equation, we can see that one mole of HNO3 reacts with one mole of KOH to form one mole of water. Therefore, the number of moles of HNO3 present in the solution is given by:

moles of HNO3 = 0.160 M × 0.100 L = 0.016 mol

Similarly, the number of moles of KOH present in the solution is given by:

moles of KOH = 0.100 M × 0.400 L = 0.040 mol

Since the reaction is a 1:1 stoichiometric ratio, the number of moles of HCl required to neutralize the mixture is also 0.016 mol.

To calculate the volume of 2.00 M HCl required, we can use the following formula:

moles of HCl = Molarity of HCl × volume of HCl

0.016 mol = 2.00 M × volume of HCl

volume of HCl = 0.008 L = 8.0 mL

Therefore, 67.0 mL of 2.00 M HCl must be added to neutralize the mixture of 0.160 M HNO3 and 0.100 M KOH.

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what is the best description of the catalytic mechanism of gk? catalysis occurs through:

Answers

Answer:

The catalytic mechanism of glucokinase (GK) is still not fully understood, but it is thought to involve the following steps:

Glucose binds to GK in a specific pocket.

ATP binds to GK in a different pocket.

The two substrates are brought close together by GK.

A general acid-base catalyst in GK deprotonates the C6 hydroxyl group of glucose.

A nucleophilic attack by the C6-hydroxyl group of glucose on the α-phosphate of ATP takes place.

The reaction is completed by the release of ADP and glucose-6-phosphate.

GK is a very efficient catalyst, and it is thought that its efficiency is due to the following factors:

The specific binding of the substrates to GK creates a favorable orientation for the reaction to take place.

The presence of a general acid-base catalyst in GK speeds up the reaction by providing a proton to protonate the C6 hydroxyl group of glucose and a base to abstract a proton from the α-phosphate of ATP.

The close proximity of the substrates in GK allows the reaction to take place more easily.

GK is an important enzyme in the regulation of glucose homeostasis. It is the rate-limiting enzyme in the hepatic phosphorylation of glucose, and it plays a role in the regulation of insulin secretion.

Explanation:

Label each of the following substances as an acid, base, salt, or none of the above. Indicate whether the substance exists in aqueous solution entirely in molecular form, entirely as ions, or as a mixture of molecules and ions. A) HF, B) acetonitrile (CH,CN), C) NaCIO D) Ba(OH)

Answers

The substances hydrogen fluoride (HF) is an acid, Acetonitrile (CH₃CN) is not an acid, base, or salt, sodium hypochlorite (NaClO) will be a salt, and barium hydroxide (Ba(OH)₂) is a base.

HF; Acid

Exists in aqueous solution as a mixture of molecules and ions (partially dissociates into H⁺ and F⁻ ions). HF is a weak acid and undergoes partial ionization in water.

Acetonitrile (CH₃CN); None of the above (not an acid, base, or salt)

Exists in aqueous solution entirely in molecular form (does not ionize in water). Acetonitrile is a polar organic solvent commonly used in various chemical reactions and extractions.

NaClO; Salt

Exists in aqueous solution entirely as ions (completely dissociates into Na⁺ and ClO⁻ ions). NaClO, also known as sodium hypochlorite, is commonly used as a disinfectant and bleaching agent.

Ba(OH)₂; Base

Exists in aqueous solution entirely as ions (completely dissociates into Ba²⁺ and OH⁻ ions). Ba(OH)₂ is a strong base that completely ionizes in water. It is commonly used in various applications, including as a reagent and in the production of ceramics.

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find δg∘rxn for the reaction 2a+b→2c from the given data.

Answers

The reaction enthalpy change, ΔH°rxn, is provided along with the standard Gibbs free energy change of formation, ΔG°f, for each compound involved in the reaction. By applying Hess's law and the relationship ΔG°rxn = ΔH°rxn - TΔS°rxn, where T represents temperature and ΔS°rxn is the standard entropy change, we can calculate ΔG°rxn.

1. Hess's law states that the overall enthalpy change for a reaction is independent of the pathway taken. We can use this principle to calculate ΔH°rxn by considering the enthalpy changes associated with the formation of the reactants and products.

2. Using the given data, we find the following enthalpy changes: ΔH°f(A) = x, ΔH°f(B) = y, ΔH°f(C) = z. The formation of two moles of compound C requires twice the energy, so we have ΔH°rxn = 2ΔH°f(C) - 2ΔH°f(A) - ΔH°f(B).

3. Next, we need to calculate the standard entropy change, ΔS°rxn. Unfortunately, the data provided does not include entropy values, so we cannot determine this directly. However, if we have additional information or assumptions about the reaction, we could estimate ΔS°rxn or use experimental data to obtain an approximation.

4. Finally, using the relationship ΔG°rxn = ΔH°rxn - TΔS°rxn, we can calculate ΔG°rxn. Remember to convert the temperature to Kelvin (K) before performing the calculation.

5. It's important to note that without specific entropy data or additional information, it may not be possible to calculate the exact value of ΔG°rxn for the given reaction.

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A sample of oxygen gas has a volume of 1.72 L at 27°C and 800.0 torr. How many oxygen molecules does it contain? A.4.43 x 10^22 B. 3.36 x 10^25 C.4.92 x 10^23
D.8.19 x 10^24 E. none of these

Answers

The ideal gas law, PV = nRT, can be used to solve this problem. First, we need to convert the temperature to Kelvin by adding 273.15. So, the temperature is 300.15 K.


To determine the number of oxygen molecules in the given sample, we can use the Ideal Gas Law formula: PV = nRT. We need to convert the given information to appropriate units: Volume (V) = 1.72 L, Temperature (T) = 27°C = 300 K, and Pressure (P) = 800.0 torr = (800.0/760) atm ≈ 1.053 atm. The gas constant (R) is 0.0821 L atm/mol K.

First, solve for the number of moles (n): (1.053 atm)(1.72 L) = n(0.0821 L atm/mol K)(300 K). Solving for n, we get n ≈ 0.0719 mol.

Since oxygen is a diatomic molecule (O2), we multiply the number of moles by Avogadro's number (6.022 x 10^23 molecules/mol): (0.0719 mol)(6.022 x 10^23 molecules/mol) ≈ 4.32 x 10^22 molecules.

The closest answer is A (4.43 x 10^22), which is a reasonable approximation given the rounded values used in the calculations.

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Calculate the expected pH of a 0.050 M aqueous solution of maleic acid using Ka1 of .012

Answers

The expected pH of a 0.050 M aqueous solution of maleic acid, with a Ka1 value of 0.012, can be calculated using the principles of acid-base equilibrium. Maleic acid is a weak acid, and its ionization in water will lead to the formation of both maleate ions and hydronium ions.

1. The pH of the solution depends on the concentration of these ions and can be determined by solving the equilibrium expression. Maleic acid (H2C4H2O4) is a weak acid that dissociates in water according to the following equation:

H2C4H2O4 ⇌ H+ + HC4H2O4-

2. The Ka1 value of maleic acid is given as 0.012, which represents the acid dissociation constant for the first ionization step. To calculate the expected pH, we need to consider the initial concentration of maleic acid and the equilibrium concentrations of its ions. Given that the initial concentration of maleic acid is 0.050 M, let's assume x is the concentration of H+ ions formed and HC4H2O4- ions present at equilibrium. Since maleic acid is a diprotic acid, the concentration of H2C4H2O4 at equilibrium will be (0.050 - x) M.

3. Using the equilibrium expression for the first ionization step, we can write:

Ka1 = [H+][HC4H2O4-] / [H2C4H2O4]

Substituting the known values, we have:

0.012 = x * x / (0.050 - x)

Solving this quadratic equation will give the concentration of H+ ions at equilibrium. Once we have the concentration of H+ ions, we can calculate the pH using the formula: pH = -log[H+].

4. In summary, by solving the equilibrium expression for the ionization of maleic acid and determining the concentration of H+ ions at equilibrium, we can calculate the expected pH of the 0.050 M aqueous solution.

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a beaker contains a saturated solution of water and nacl at 25oc. how could the amount of nacl that can be dissolved in the solution be increased?

Answers

To increase the amount of NaCl that can be dissolved in the saturated solution, there are a few possible methods that can be applied.

One method is to increase the temperature of the solution. The solubility of most solids in liquids increases with temperature, and NaCl is no exception. By heating up the solution, more NaCl can be dissolved in it until it reaches a new saturation point.
Another method is to add a solvent that is able to dissolve both NaCl and water, such as ethanol or methanol. These solvents can form a ternary system with NaCl and water, which can increase the solubility of NaCl in the solution. However, care must be taken when using these solvents as they are often flammable and toxic.
Lastly, increasing the pressure can also increase the solubility of NaCl in the solution. This is because the pressure affects the equilibrium between the solid NaCl and its dissolved ions. By applying pressure, the equilibrium can be shifted towards the dissolved ions, resulting in more NaCl being able to dissolve in the solution.
Overall, there are a few methods that can be used to increase the amount of NaCl that can be dissolved in a saturated solution, including increasing the temperature, adding a solvent, or increasing the pressure. However, it is important to note that these methods must be carefully controlled to avoid any unwanted side effects.

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alkali metals, when placed in water, are highly reactive and sometimes capable of causing large explosions. which property can explain this reactivity?

Answers

The high reactivity of alkali metals when placed in water can be explained by their low ionization energy.

Ionization energy is the energy required to remove an electron from an atom or ion. Alkali metals have only one valence electron, which is held relatively loosely due to their large atomic size and low nuclear charge. As a result, they have low ionization energies, meaning that it takes relatively little energy to remove their outermost electron and form a positively charged ion.

When an alkali metal is placed in water, the low ionization energy allows it to easily donate its valence electron to a water molecule, forming a positively charged ion and a negatively charged hydroxide ion. This reaction generates heat and hydrogen gas, which can lead to an explosion if the reaction is rapid and uncontrolled.

In summary, the high reactivity of alkali metals in water can be explained by their low ionization energy, which allows them to readily donate their valence electron to water and form a highly reactive cation.

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What will increase the strength of an electromagnet

A. Wrapping the wire around a piece of paper
B. Adding more loops to the wire
C. Turning the current down
D. Having fewer coils

Answers

Answer: b

Explanation:

Aadding more loops to the wire will increase the strength of an electromagnet. The answer is B.

An electromagnet is a type of magnet in which the magnetic field is created by an electric current. The strength of the magnetic field of an electromagnet depends on the amount of current flowing through the wire, the number of loops in the wire, and the core material.

By increasing the number of loops of wire, the magnetic field becomes stronger as each loop adds to the overall strength.

Therefore, wrapping the wire around a piece of paper or having fewer coils (options A and D) will not increase the strength of an electromagnet. Additionally, turning the current down (option C) will decrease the strength of the magnetic field. Therefore, B is the right option.

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A physics experiment is conducted at a pressure of 14.4 kPa. What is this pressure in mmHg?
A)
18.9 mmHg
B)
1.92 mmHg
C)
mmHg
D)
108 mmHg
E)
mmHg

Answers

The pressure of 14.4 kPa is equivalent to approximately 108 mmHg calculated by using the conversion factor of 7.50062 mmHg per 1 kPa.

To convert from kPa to mmHg, we can use the conversion factor of 7.50062 mmHg per 1 kPa. Therefore, we can multiply 14.4 kPa by 7.50062 mmHg/kPa to get the pressure in mmHg. This gives us an answer of approximately 108 mmHg. Option D is the correct answer.

It's worth noting that mmHg is a commonly used unit of pressure, especially in medical settings, while kPa is often used in scientific and engineering contexts. It's important to be able to convert between different units of pressure depending on the situation.

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given planck's constant as 6.626 × 10-34 joule-second. what is the energy of 2.45 ghz photon?

Answers

The energy of a photon can be calculated by the equation E = hf, where E is the energy, h is Planck's constant, and f is the frequency of the photon. To find the energy of a 2.45 GHz photon, we need to first convert the frequency to Hz by multiplying it by 10^9, which gives us a frequency of 2.45 x 10^9 Hz. Then, we can plug in the values into the equation to get E = (6.626 x 10^-34 J s) x (2.45 x 10^9 Hz) = 1.62 x 10^-24 J.

In summary, the energy of a 2.45 GHz photon is 1.62 x 10^-24 J, which can be calculated using the equation E = hf, where E is the energy, h is Planck's constant, and f is the frequency of the photon.

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how does the amount of heat released in a planet’s interior by radioactive decay change with time?

Answers

The amount of heat released in a planet's interior by radioactive decay changes with time by gradually decreasing over time.

When a planet forms, the heat generated by the process of accretion causes it to become molten, and the heat from radioactive decay within the planet contributes to keeping it hot.

However, over time, the amount of radioactive isotopes in the planet's interior decreases as they decay, leading to a gradual decrease in the amount of heat released.

This process continues until the planet's interior cools to a point where the heat generated by radioactive decay is no longer significant enough to maintain its molten state. At this point, the planet becomes geologically inactive and its interior cools down to a solid state.

The rate of cooling depends on the size and composition of the planet, as well as the amount and type of radioactive isotopes present.

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Use a graduated cylinder to add
approximately 40 mL of water to the
calorimeter. Measure the mass of the
calorimeter (no lid) and water to the
nearest 0.01 g.

Answers

To measure the mass of the calorimeter and water, the steps are as follows:

Place the empty calorimeter on the balance and press the "Tare" or "Zero" button to reset the balance to zero.

Use a graduated cylinder to add approximately 40 mL of water to the calorimeter.

Carefully wipe off any excess water from the outside of the calorimeter using a paper towel.

Place the calorimeter with the water on the balance and record the mass to the nearest 0.01 g.

If necessary, repeat the measurement a few times to ensure accuracy and consistency.

The exact procedure may vary depending on the specific calorimeter and balance being used. Always follow the instructions provided by the manufacturer or the lab instructor.

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Data and Analysis:
Run
2
3
Mass (g)
Total
Total
mass
mass
before
vinegar
after
reaction reaction
36m 145.95 3.23 141.159 148.225
3.5ml 136.99 3.22140120 134.219
26145.45 3.300 148.22 147.72
Volume
(mL.)
Vinegar
Beaker
Tablet
Ebo's
Mass of
%
CO₂
NICO | NHCO.
Formed in tablet in tablet
Post Lab Exercises:
2. Calculate the mass of carbon dioxide gas generated in each of the runs (see data table).
Show a sample calculation.

Answers

44g is the mass of carbon dioxide gas generated in each of the runs. It is the most fundamental characteristic of matter as well as one of the fundamental quantities throughout physics.

Anything that has the same quantity, or the 6.022 x 10²³ atoms found in 12 grammes of carbon-12 (C-12), is referred to as a mole. The formula for calculating an element's number of moles is = Given mass/Atomic mass. Carbon dioxide's molar mass is 44g. It is the most fundamental characteristic of matter as well as one of the fundamental quantities throughout physics.

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What is the calculated value of the cell potential at 298K for an electrochemical cell with the following reaction, when the Cu2+ concentration is 8.24×10-4 M and the Mn2+ concentration is 1.42 M ? Cu2+(aq) + Mn(s) Cu(s) + Mn2+(aq) Answer: ______V The cell reaction as written above is spontaneous for the concentrations given:

Answers

The calculated value of the cell potential at 298K for an electrochemical cell, [tex]Mn(s)/Mn^{2+}(1.42M)||Cu^{2+}(8.24 × 10^{-4}M)/Cu(s)[/tex], is equals to the - 0.0868 V. It is true that the reaction is spontaneous for specify concentration.

We have an electrochemical cell with the following reaction, Cu²⁺ (aq) + Mn(s) --> Cu(s) + Mn²⁺ (aq)

Concentration of Cu²⁺ = 8.24 × 10⁻⁴ M

Concentration of Mn²⁺ = 1.42 M

Temperature, T = 298 K

There are 2 half-cell equations,

[tex]Cu^{2+}_{(aqu)}+2e^{-}\rightarrow Cu_{(s)}[/tex]

The above one represents the reaction in the reduction half-cell(Cathode). The cell potential for this reaction is

[tex]E=E^{0}- \frac{0.0592}{n}log\frac{1}{[Cu^{2+}]}[/tex]

where E⁰ is the standard electrode potential and is 0 for this cell (concentration cell with the same element as anode and cathode) and n is the number of electrons involved. Here, [Cu²⁺] = 8.24 × 10⁻⁴ M

[tex]E=0- \frac{0.0592}{2}log\frac{1}{[8.2 × 10^{-4}]}[/tex]

= -0.09135V

Similarly for the oxidation half-reaction in the anode, [tex]Mn_{(s)}\rightarrow Mn^{2+}_{(aqu)}+2e^{-}[/tex]

[Mn²⁺ ] = 1.42 M

[tex]E=0- \frac{0.0592}{2}log\frac{1}{[1.42]}[/tex] = -0.00451 V

cell potential of the reaction can be calculated by the formula, [tex]E_{cell}=E_{cathode}-E_{anode}[/tex]

= -0.09135 - (-0.00451)

= - 0.0868 V

Since Ecell < E⁰ the given reaction is spontaneous. Hence, reaction is spontaneous reaction.

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Complete question:

What is the calculated value of the cell potential at 298K for an electrochemical cell with the following reaction, when the Cu2+ concentration is 8.24×10-4 M and the Mn2+ concentration is 1.42 M ? Cu2+(aq) + Mn(s) Cu(s) + Mn2+(aq) Answer: ______V The cell reaction as written above is spontaneous for the concentrations given: true/false.

how can the synthesis and breakdown of fructose-2,6-bisphosphate be controlled independently?

Answers

The synthesis and breakdown of fructose-2,6-bisphosphate can be controlled independently through two separate enzymes: phosphofructokinase-2 and fructose-2,6-bisphosphatase (FBPase-2). phosphofructokinase-2 synthesizes fructose-2,6-bisphosphate, while FBPase-2 breaks it down.

The activity of these enzymes is regulated by different signaling pathways and molecules. For example, insulin stimulates phosphofructokinase-2 activity and inhibits FBPase-2 activity, leading to increased fructose-2,6-bisphosphate synthesis. On the other hand, glucagon stimulates FBPase-2 activity and inhibits phosphofructokinase-2 activity, leading to decreased fructose-2,6-bisphosphate synthesis and increased breakdown.

Other signaling molecules, such as AMP and citrate, can also regulate the activity of these enzymes independently. Therefore, the balance between fructose-2,6-bisphosphate synthesis and breakdown can be finely tuned by different signals and metabolic conditions.

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