4-methylpentane
The response of 4-methyl-2-pentyne with extra hydrogen in the presence of a platinum catalyst is a hydrogenation reaction, which entails the addition of hydrogen atoms across the triple bond of the alkyne. The expected foremost organic product is 4-methylpentane, which is formed through the complete discount of the triple bond to a single bond.
The hydrogenation of 4-methyl-2-pentyne proceeds through a stepwise addition of hydrogen atoms to the triple bond, forming an intermediate alkene and then a saturated alkane. However, the presence of extra hydrogen ensures that the alkene intermediate is quickly decreased to the alkane product, which is the extra thermodynamically secure form.
Therefore, the anticipated main organic product of the hydrogenation reaction of 4-methyl-2-pentyne with extra hydrogen in the presence of a platinum catalyst is 4-methylpentane
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Find the volume of a rectangle is 3.45 cm x 4.55 inches (1in= 2.54 cm)
Therefore, the volume of the rectangle is approximately 39.82045 cm³.
What is the square's volume?By simply understanding the length of a square box's sides, we can determine its volume. The square root of the length of a square box's edge gives the volume of a square box. V = s3, where s is the length of the square box's edge, is the formula for volume.
First, using the conversion formula 1 inch = 2.54 cm, we must convert the rectangle's length and breadth from inches to centimetres:
Length = 4.55 inches x 2.54 cm/inch = 11.561 cm
Width = 3.45 cm
Now we can calculate the volume of the rectangle:
Volume = Length x Width x Height
Volume = 11.561 cm x 3.45 cm x 1 cm
Volume = 39.82045 cm³ (rounded to five significant figures).
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what is the heat of a reaction, in joules, with a total reaction mixture volume of 72.7 ml if the reaction causes a temperature change of 6.0 oc in a calorimeter? assume that the reaction mixture has a density of 1.00 g/ml and a specific heat of 4.184 j/g-oc. the calorimeter has a heat capacity of 10.0 j/oc.
The heat of a reaction, in joules, with a total reaction mixture volume of 72.7 ml if the reaction causes a temperature change of 6.0 oc in a calorimeter is 24.8 joules.
To calculate the heat of the reaction, we can use the formula:
q = -C_cal * ΔT
where q is the heat transferred to the calorimeter and C_cal is the heat capacity of the calorimeter. Since the reaction takes place in the calorimeter, the heat transferred to the calorimeter is equal to the heat of the reaction. We also know that:
q = m * c * ΔT
where m is the mass of the reaction mixture, c is the specific heat of the reaction mixture, and ΔT is the temperature change of the reaction mixture.
We can rearrange this equation to solve for the heat of the reaction:
q = (m * c * ΔT) / V
where V is the volume of the reaction mixture.
Plugging in the given values, we get:
q = [(72.7 g) * (4.184 J/g-°C) * (6.0°C)] / (72.7 mL)
q = 24.8 J
Therefore, the heat of the reaction is 24.8 joules.
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If 3 mol of methane and 2.5 mol of methanol are completely burnt in separate experiments, which experiment will release the most energy?
Answer:
When methane (CH4) and methanol (CH3OH) are burned, they react with oxygen (O2) to form carbon dioxide (CO2) and water (H2O). The balanced chemical equations for the combustion of methane and methanol are:
CH4 + 2O2 → CO2 + 2H2O
CH3OH + 1.5O2 → CO2 + 2H2O
The amount of energy released during combustion depends on the amount of reactants consumed, and can be calculated using the standard enthalpy of formation of the products and reactants. The standard enthalpy of formation is the amount of energy released or absorbed when one mole of a compound is formed from its constituent elements in their standard states at a specified temperature and pressure.
Using the standard enthalpy of formation values from a chemistry data book, we can calculate the energy released by each experiment:
For the combustion of 3 mol of methane:
Energy released = (3 mol) x (-890.36 kJ/mol) = -2671.08 kJ
For the combustion of 2.5 mol of methanol:
Energy released = (2.5 mol) x (-726.74 kJ/mol) = -1816.85 kJ
Therefore, the experiment that will release the most energy is the combustion of 3 mol of methane, which will release -2671.08 kJ of energy.
1.
(10.03 LC)
How will a plant respond to a light stimulus?(2 points)
The plant will stop growing.
The plant will become droopy.
The plant will bend toward the light.
The plant will drop its fruit and petals.
The correct option is C. The plant will bend toward the light. In response to a light stimulus, a plant will bend or grow towards the light source to optimize its photosynthesis and growth.
Plants have a natural tendency to grow towards light sources, a behavior called phototropism. When a plant receives a light stimulus, a hormone called auxin is produced in the plant's stem, which moves towards the shaded side of the stem.
This accumulation of auxin on the shaded side causes the cells on that side to elongate and the plant bends towards the light source. This bending allows the plant to maximize its exposure to light, which is essential for photosynthesis, the process by which plants produce food.
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What kind of energy is stored in the peanuts? What kinds of energy is it transformed into? Explain the differences in the results.
Answer:
The Peanut contains chemical energy and when consumed will be turned into kenetic energy
. (3 points) one container of tumsr costs 4.00 dollars. each container has eighty 1.00 g tablets. assume each tumsr is 40.0 percent caco3 by mass. using only tumsr, you are required to neutralize 0.500 l of 0.400 m hcl. how much does this cost?
The balanced chemical equation for the reaction of HCl with CaCO3 is:
2 HCl + CaCO3 → CaCl2 + CO2 + H2O
From the equation, we can see that 1 mole of CaCO3 reacts with 2 moles of HCl.
The number of moles of HCl in 0.500 L of 0.400 M HCl is:
n(HCl) = C(HCl) x V(HCl)
n(HCl) = 0.400 mol/L x 0.500 L
n(HCl) = 0.200 mol
Since 1 mole of CaCO3 reacts with 2 moles of HCl, the number of moles of CaCO3 needed to neutralize the HCl is:
n(CaCO3) = 0.200 mol / 2 = 0.100 mol
The mass of CaCO3 needed to neutralize the HCl is:
m(CaCO3) = n(CaCO3) x M(CaCO3)
m(CaCO3) = 0.100 mol x 100.09 g/mol
m(CaCO3) = 10.01 g
Each Tums tablet weighs 1.00 g and contains 40.0% CaCO3 by mass, so the mass of CaCO3 in one tablet is:
m(CaCO3) = 1.00 g x 0.40
m(CaCO3) = 0.40 g
To obtain 10.01 g of CaCO3, we need:
n(tablets) = m(CaCO3) / m(tablet)
n(tablets) = 10.01 g / 0.40 g/tablet
n(tablets) = 25 tablets
Therefore, we need 25 Tums tablets to neutralize the HCl. The cost of one Tums container is $4.00 and contains 80 tablets, so the cost of 25 tablets is:
cost = (25 tablets / 80 tablets) x $4.00
cost = $1.25
Therefore, it costs $1.25 to neutralize 0.500 L of 0.400 M HCl using Tums tablets.
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if your titration solution is 0.427 m in naoh, and the endpoint occurs at 13.70 ml of titrant, how many mmol of naoh are required to reach the endpoint?
If your titration solution is 0.427 M in NaOH, and the endpoint occurs at 13.70 mL of titrant, the number of mmol of NaOH required to reach the endpoint is 5.830 mmol.
To calculate the number of mmol of NaOH required to reach the endpoint, we can use the following formula: mmol NaOH = M NaOH x V NaOH where, M NaOH = molarity of NaOH V NaOH = volume of NaOH used in the titration. By substituting the given values in the above formula, we get; mmol NaOH = 0.427 M x 13.70 mL= 5.830 mmol. Therefore, the number of mmol of NaOH required to reach the endpoint is 5.830 mmol.
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How do the intermolecular forces and intramolecular forces in Barium Sulfate affect their solubility in water and its melting point?
Due to the strong intramolecular interactions caused by the compound's ionic structure, barium sulfate has a high melting point. Its low water solubility is a result of the molecules' weak intermolecular interactions.
The lattice structure is too stable to be disturbed by water molecules because of the intense electrostatic attraction between the barium and sulfate ions. Also, because the substance is ionic, water molecules cannot efficiently dissolve the ions. Generally, barium sulfate has strong intramolecular forces that contribute to its high melting point, but weak intermolecular forces and an ionic character that causes it to be poorly soluble in water.
To sum, the barium cations and sulfate anions possess high intra - molecular energies, which lead to an elevated melting temperature.
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a student habitually adds excess reagents to try maximize yields. in this procedure, he adds a two-fold excess of acetone. what product is he likely to isolate
To increase the yield of a reaction sometimes excess reagents maybe helpful. Certain cases it can cause negative effects also in the outcome of a reaction.
Assume a student using acetone as a solvent. Adding two-fold excess of acetone. It probably not have a significant effect on the outcome of the reaction.
Acetone is a common organic solvent. It is often used in reactions as a reaction medium or as a solvent to dissolve the starting materials.
But if the student is adding a two-fold excess of acetone as a reactant, it can lead to chemical reaction. it can lead to the formation of unwanted byproducts. Also interfere with the desired reaction.
Information of specific reaction is not given. So it is not possible to determine what product they are likely to isolate.
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(b) after 11.1 ml of base had been added during the titration, the ph was determined to be 5.41. what is the ka of the unknown acid?
The Ka of the unknown acid is 3.98 x 10⁻².
To find the Ka of the unknown acid, we need to use the Henderson-Hasselbalch equation, which relates the pH, pKa, and the concentrations of the acid and its conjugate base:
pH = pKa + log([A⁻]/[HA])
where [A⁻] will be the concentration of the conjugate base and [HA] will be the concentration of the acid.
At the halfway point of the titration, where 11.1 mL of base has been added, we can assume that the moles of acid (HA) and the moles of base (OH⁻) are equal. Therefore, we can calculate the initial concentration of the acid (before any base is added) using the volume of acid and its known molarity;
moles of acid = volume of acid (in L) x molarity of acid
moles of acid = 0.025 L x 0.100 M = 0.0025 moles
Since we added an equal amount of base, the concentration of the acid is now half of its original concentration;
concentration of acid = 0.100 M / 2 = 0.050 M
The concentration of the conjugate base can be calculated as follows;
concentration of base = volume of added base (in L) x molarity of base
concentration of base = 11.1 mL x (1 L / 1000 mL) x 0.100 M = 0.00111 M
Using the equation above and the given pH of 5.41, we can solve for the pKa;
5.41 = pKa + log([0.00111]/[0.050])
-0.59 = pKa - log(45.05)
-0.59 + log(45.05) = pKa
pKa = 1.46
Finally, we can use the relationship between Ka and pKa to find the Ka:
Ka = [tex]10^{(-pKa)}[/tex]
Ka = [tex]10^{(-1.46)}[/tex]
Ka = 3.98 x 10⁻²
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what is the molar concentration of fe2 ? in a 0.1 m solution of [fe(cn)6] 4-? (kf = 1 x 1037)
The concentration of Fe2+ in a 0.1 M solution of [Fe(CN)6]4- is 3.98 x 10^-31 M.
The molar concentration of Fe2+ can be calculated using the following equation:Kf = [Fe2+][CN-]6 / [Fe(CN)6]4-Kf is the formation constant for [Fe(CN)6]4-, which is given as 1 x 1037 in the question.[Fe(CN)6]4- is present in a concentration of 0.1 M, which means [Fe(CN)6]4- = 0.1 M.
Substituting these values into the equation gives:1 x 1037 = [Fe2+][CN-]6 / 0.1M Rearranging the equation gives:[Fe2+] = (1 x 1037)(0.1M) / [CN-]6The concentration of CN- can be found using the charge balance equation:[Fe(CN)6]4- + Fe2+ ⇌ [Fe(CN)6]3- + Fe3+The overall charge on the left side is -4 + 2 = -2
The overall charge on the right side is -3 + 3 = 0Therefore, 2 moles of CN- are released for every mole of [Fe(CN)6]4-. The concentration of CN- is thus:[CN-] = 2[Fe(CN)6]4- = 2(0.1 M) = 0.2 M
Substituting this value into the equation for [Fe2+] gives:[Fe2+] = (1 x 1037)(0.1M) / (0.2M)6 = 3.98 x 10^-31 M
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a concentration cell consists of two sn/sn2 half-cells. the electrolyte in compartment a is 0.13 m sn(no3)2. the electrolyte in b is 0.87 m sn(no3)2. which half-cell houses the cathode? what is the voltage of the cell? cathode: half-cell a half-cell b voltage of cell: v
The half-cell that houses the cathode is Half-cell B. The voltage of the cell is approximately 0.0297 V.
In a concentration cell, the cathode is the half-cell with the higher concentration of electrolyte. In this case, half-cell B has a higher concentration (0.87 M) compared to half-cell A (0.13 M).
Cathode: Half-cell B
To calculate the voltage of the cell, we can use the Nernst equation:
E_cell = E° - (RT/nF) * ln(Q)
For a Sn/Sn²⁺ concentration cell, the standard cell potential E° = 0 V, as both half-cells have the same redox reaction. The reaction quotient Q = [Sn²⁺ (A)] / [Sn²⁺ (B)].
Substituting the values and considering room temperature (25°C or 298.15 K), we get:
E_cell = 0 - ((8.314 J/mol·K * 298.15 K) / (2 * 96485 C/mol) * ln(0.13 M / 0.87 M)
E_cell ≈ 0.0297 V
Voltage of cell: 0.0297 V
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Metallic magnesium reacts with steam to produce magnesium hydroxide and hydrogen gas. If 16.2 g Mg is heated with 12.0 g H2O, How many grams of each product are formed?
When 12.0 g [tex]H_2O[/tex] and 16.2 g Mg are heat,then 38.9 g [tex]Mg(OH)_2[/tex] and 2.67 g [tex]H_2[/tex] are produced.
The balanced equation for the reaction is
[tex]Mg(s) + 2H_2O(g) \rightarrow Mg(OH)_2(s) + H_2(g)[/tex]
To determine the amount of each product formed, we first need to calculate the number of moles of each reactant.
Moles of Mg = [tex]\frac{16.2 g }{ 24.305 g/mol }= 0.665 mol[/tex]
Moles of H2O = [tex]\frac{ 12.0 g }{18.015 g/mol }= 0.666 mol[/tex]
Because the reaction involves two moles of water for every mole of magnesium, the moles of magnesium and water are equal.
Next, we use the mole ratio from the balanced equation to calculate the moles of each product formed.
Moles of [tex]Mg(OH)_2[/tex] =
[tex]0.665 mol Mg * (\frac{1 mol Mg(OH)_2 }{ 1 mol Mg})\\\\ = 0.665 mol Mg(OH)_2[/tex]
Moles of [tex]H_2[/tex] = [tex]0.665 mol Mg * (\frac{2 mol H_2 }{ 1 mol Mg}) = 1.33 mol H_2[/tex]
Finally, we use the molar masses of each product to calculate the mass of each product formed.
Mass of [tex]Mg(OH)_2[/tex] = 0.665 mol[tex]Mg(OH)_2[/tex] * 58.323 g/mol = 38.9 g [tex]Mg(OH)_2[/tex]
Mass of [tex]H_2[/tex] = 1.33 mol [tex]H_2[/tex]* 2.016 g/mol = 2.67 g [tex]H_2[/tex]
Therefore, if 16.2 g Mg is heated with 12.0 g [tex]H_2O[/tex], 38.9 g [tex]Mg(OH)_2[/tex] and 2.67 g [tex]H_2[/tex] are formed.
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what is the agriculture thallium?
Answer:is a trace metal of severe toxicity. Its health concerns via consumption of contaminated vegetables have often been overlooked or underestimated
Explanation: Read it carefully and it explains
dissolving ammonium bromide in water gives an acidic solution. choose a balanced equation that better shows how this can occur.
The balanced equation for the dissolution of ammonium bromide in water that gives an acidic solution is [tex]NH4Br + H2O → NH4+ + Br- + H+ + OH-.[/tex]
The equation is balanced because the number of atoms of each element is equal on both sides of the equation.
Ammonium bromide is a salt that, when dissolved in water, produces an acidic solution.
When ammonium bromide (NH4Br) is dissolved in water, it dissociates into NH4+ and Br- ions, as well as a small amount of H+ ions and OH- ions produced by the autoionization of water (H2O → H+ + OH-).
The reaction can be represented by the following balanced chemical equation:NH4Br + H2O → NH4+ + Br- + H+ + OH-In the equation, the NH4+ and Br- ions are spectator ions that do not participate in the acid-base reaction.
Instead, the H+ ions combine with the OH- ions to form water (H+ + OH- → H2O), leaving behind a net concentration of H+ ions that make the solution acidic.
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at this point, you should have some idea of how a strong acid behaves in solution once it dissolves. choose all that apply as they relate to a strong acid. group of answer choices a strong acid dissociates partially in solution to produce its conjugate a strong acid dissociates completely in solution to produce its conjugate the conjugate of a strong acid is neutral in ph when in solution the conjugate of a strong acid is basic in solution the conjugate of a strong acid is an anion the conjugate of a strong acid is a cation
After dissolving in solution, the following a strong acid dissociates completely in solution to produce its conjugate and the conjugate of the strong acid is the ion this applies. Here options B and D are the correct answer.
A strong acid is one that completely dissociates into its constituent ions in an aqueous solution. This means that all of the acid molecules break apart into hydrogen ions (H+) and the corresponding anions. Therefore, option B is correct, while option A is incorrect.
The conjugate base of a strong acid is an anion because the hydrogen ion (H+) has been removed from the acid molecule. This anion may be neutral or basic in solution, depending on the identity of the anion. Therefore, option E is correct, while options C and D are incorrect. Finally, the conjugate of a strong acid is not a cation, so option F is also incorrect.
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Complete question:
Which of the following applies to a strong acid once it dissolves in solution?
A. It dissociates partially in solution to produce its conjugate
B. It dissociates completely in solution to produce its conjugate
C. The conjugate of a strong acid is neutral in pH when in solution
D. The conjugate of a strong acid is basic in the solution
E. The conjugate of a strong acid is an anion
F. The conjugate of a strong acid is a cation
Calculate the decrease in temperature when 8.5 Lat 25.0 °C is compressed to 4.00 L.
The decrease in temperature of a gas when compressed can be calculated using the ideal gas law, which relates the pressure, volume, temperature, and number of particles of a gas.
The ideal gas law is expressed as PV = nRT, where P is the pressure, V is the volume, n is the number of particles, R is the gas constant, and T is the temperature.
To calculate the decrease in temperature, we first need to determine the initial conditions of the gas. At 8.5 L and 25.0 °C, we can assume that the pressure is constant and that the number of particles is also constant. Therefore, we can write:
P1V1/T1 = P2V2/T2
where P1 is the initial pressure, V1 is the initial volume, T1 is the initial temperature, P2 is the final pressure, V2 is the final volume, and T2 is the final temperature.
Plugging in the values, we get:
P1 × 8.5 L / 25.0 °C = P2 × 4.00 L / T2
Simplifying and solving for T2, we get:
T2 = (P2 × 4.00 L × 25.0 °C) / (P1 × 8.5 L)
Assuming that the pressure remains constant, we can simplify the equation further:
T2 = (4.00 L × 25.0 °C) / 8.5 L
T2 = 11.8 °C
Therefore, the decrease in temperature is:
25.0 °C - 11.8 °C = 13.2 °C
In summary, when 8.5 L of gas at 25.0 °C is compressed to 4.00 L, the temperature decreases by 13.2 °C.
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a 600-mL sample of nitrogen is warmed from 350K to 359K. find its new volume of the pressure remains constant
Charles's Law-
[tex]\:\:\:\:\:\: \:\:\:\:\:\:\star\longrightarrow\sf \underline{\dfrac{V_1}{T_1}=\dfrac{V_2}{T_2}}\\[/tex]
Where:-
V₁ = Initial volumeT₁ = Initial temperatureV₂ = Final volumeT₂ = Final temperatureAs per question, we are given that -
V₁=600 mLT₁ = 350KT₂ =359KNow that we have obtained all the required values, so we can put them into the formula and solve for V₂ :-
[tex]\:\:\:\:\:\: \:\:\:\:\:\:\star\longrightarrow\sf \underline{\dfrac{V_1}{T_1}=\dfrac{V_2}{T_2}}\\[/tex]
[tex] \:\:\:\:\:\:\:\:\:\:\:\:\longrightarrow \sf V_2= \dfrac{V_1}{T_1}\times T_2\\[/tex]
[tex] \:\:\:\:\:\:\:\:\:\:\:\:\longrightarrow \sf V_2= \dfrac{600}{350}\times 359\\[/tex]
[tex] \:\:\:\:\:\:\:\:\:\:\:\:\longrightarrow \sf V_2= 1.71428..............\times 359\\[/tex]
[tex]\:\:\:\:\:\: \:\:\:\:\:\:\longrightarrow \sf V_2 =615.4285................\\[/tex]
[tex] \:\:\:\:\:\:\:\:\:\:\:\:\longrightarrow \sf\underline{ V_2= 615.42\:mL}\\[/tex]
Therefore, the new volume of the gas will become 615.42 mL when pressure remains constant.
which of the following is not an important property of water? group of answer choices water is clear water has a high specific heat solvent ability ice expansion liquidity of water
The property is not an important property of water is the water is clear. This is the correct option.
Important properties of water include:
1. High specific heat: Water can absorb or release a significant amount of heat without changing its temperature much, which helps regulate temperatures in the environment.
2. Solvent ability: Water is often called the "universal solvent" because it can dissolve many substances, making it essential for various chemical processes.
3. Ice expansion: When water freezes, it expands and becomes less dense, causing ice to float on water. This property helps insulate bodies of water in cold temperatures, protecting aquatic life.
4. Liquidity of water: Water's liquidity allows it to flow and transport nutrients, waste, and other materials in nature and within organisms.
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mmol (millimoles) of acetic acid. how many millimoles of acetate (the conjugate base of acetic acid) will you need to add to this solution? the pka of acetic acid is 4.74.
One will need to add 10 times the millimoles of acetic acid as acetate to achieve the desired pH of 5.74 in your solution
To determine the amount of acetate (the conjugate base of acetic acid) needed to add to the solution, we need to use the Henderson-Hasselbalch equation:
pH = pKa + log([A-] / [HA])
Where pH is the desired pH of the solution, pKa is the acid dissociation constant of acetic acid (4.74), [A-] represents the concentration of acetate (conjugate base), and [HA] represents the concentration of acetic acid.
First, decide the desired pH of the solution. Once you have the desired pH, you can solve for the ratio of [A-] / [HA] using the Henderson-Hasselbalch equation.
For example, let's say the desired pH is 5.74:
5.74 = 4.74 + log([A-] / [HA])
Rearrange the equation to solve for the ratio:
1 = log([A-] / [HA])
To remove the logarithm, use the inverse function (10^x):
10^1 = [A-] / [HA]
So the ratio of [A-] / [HA] is 10.
Now, if you know the millimoles of acetic acid (HA), you can calculate the millimoles of acetate (A-) needed:
millimoles of acetate (A-) = millimoles of acetic acid (HA) * ratio
Replace the known values and solve for the millimoles of acetate:
millimoles of acetate (A-) = millimoles of acetic acid * 10
So, you will need to add 10 times the millimoles of acetic acid as acetate to achieve the desired pH of 5.74 in your solution. Adjust the desired pH value accordingly for your specific needs.
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which is the conjugate base of water? select the correct answer below: hydronium hydroxide water none of the above
Answer:
Hydroxide
Explanation:
In chemistry, a conjugate base is the species that remains after an acid has donated a proton (H+) to a base. Water (H2O) can act as an acid and donate a proton to a base, such as the hydroxide ion (OH-), according to the following equation: H2O + OH- → H3O+ In this reaction, water donates a proton (H+) to the hydroxide ion (OH-) to form the hydronium ion (H3O+), which is the conjugate acid of water. The hydroxide ion (OH-) is left behind and can be considered as the conjugate base of water.Therefore, the hydroxide ion is the conjugate base of water because it is formed when water acts as an acid and donates a proton to a base
The conjugate base of water is "hydroxide".
In water, the hydrogen ions (H+) can dissociate from the water molecule, leaving behind a hydroxide ion (OH-) as the conjugate base. This can be represented by the following chemical equation:
H2O + H+ ↔ H3O+
In this equation, H2O is the water molecule, H+ is the hydrogen ion, and H3O+ is the hydronium ion, which is the conjugate acid of water. The hydroxide ion (OH-) is the conjugate base of water.
Therefore, the correct answer is "hydroxide".
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why are most precipitation-hardened alloys suitable only for low-temperature applications? (select all that apply.)
Precipitation-hardened alloys are suitable primarily for low-temperature applications due to a combination of factors that limit their performance at high temperatures they are recrystallization resumes, there is no dispersion strengthening, there is no dispersion strengthening.
In summary, precipitation-hardened alloys are more suitable for low-temperature applications because high temperatures lead to recrystallization, weakening of precipitates, and reduced dispersion strengthening, all of which negatively impact the strength and performance of the alloy.
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why are most precipitation-hardened alloys suitable only for low-temperature applications? (select all that apply.)
At high temperatures, recrystallization resumes.
At high temperatures, the alloy becomes bake-hardened.
At high temperatures, the precipitates lose their strength.
At high temperatures, the alloy becomes more brittle.
At high temperatures, there is no dispersion strengthening.
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How many moles of NaOH are present in 30.0 mL of 0.140 M NaOH?
To find the number of moles of NaOH present in 30.0 mL of 0.140 M NaOH, we can use the formula:
moles of solute = concentration x volume
where "solute" refers to the substance of interest (in this case, NaOH), "concentration" is the molarity of the solution, and "volume" is the volume of the solution in liters.
First, we need to convert the volume of the solution from milliliters to liters:
30.0 mL = 30.0/1000 = 0.030 L
Next, we can substitute the given values into the formula:
moles of NaOH = 0.140 mol/L x 0.030 L = 0.0042 moles
Therefore, there are 0.0042 moles of NaOH present in 30.0 mL of 0.140 M NaOH.
how much heat is required to vaporize 100.0 g of ethanol, c2h5oh, at its boiling point? the enthalpy of vaporization of ethanol at its boiling point is 38.6 kj/mol.
The amount of heat required to vaporize 100.0 g of ethanol at its boiling point is 83.78 kJ.
In order to calculate the amount of heat required to vaporize 100.0 g of ethanol at its boiling point, we can use the formula Q = n * ΔHv, where Q is the amount of heat required, n is the number of moles of ethanol, and ΔHv is the enthalpy of vaporization of ethanol.
To find the number of moles of ethanol in 100.0 g, we can divide the mass by the molar mass of ethanol, which is 46.07 g/mol:moles = mass / molar mass moles = 100.0 g / 46.07 g/mol moles = 2.172 mol.
Now we can use the formula Q = n * ΔHv to calculate the amount of heat required to vaporize 100.0 g of ethanol:Q = n * ΔHvQ = 2.172 mol * 38.6 kJ/molQ = 83.78 kJ.
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How many atoms would 50 grams of copper have?
Answer:
9.48 *1021 atoms
Answer:
One gram of copper is roughly 9.48 *1021 atoms.
so in 50g of copper there will be 4,83,954
Explanation:
identify the false statement about elements. please choose the correct answer from the following choices, and then select the submit answer button. answer choices an element contains multiple substances. an element has distinct properties. an element is a form of matter. an element contains only 1 substance.
The false statement about elements is a. an element contains multiple substances.
An element contains only one type of atom and therefore only one substance. The other statements are true: an element has distinct properties, it is a form of matter, and it contains only one substance. Elements are substances made up of only one type of atom. They are the simplest forms of matter and cannot be broken down into simpler substances by chemical reactions. Each element has its own unique set of properties, such as melting and boiling points, density, and reactivity.
These properties are determined by the number of protons in the nucleus of the atom. An element is a pure substance that cannot be broken down into simpler substances by chemical means, it is made up of only one type of atom, which has a specific number of protons in its nucleus. This number determines the element's atomic number and its unique set of properties. So, the false statement about elements is a. an element contains multiple substances.
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the difference between a methanotroph and a methylotroph can be explained as: group of answer choices methylotrophs can always oxidize methane while methanotrophs cannot a methylotroph can oxidize any methyl group, while a methanotroph oxidizes only methane methanotrophs can oxidize methyl groups to methane methylrophs oxidize methane incomplete to carbon dioxide, while methanotrophs oxidize methane completely
Methanotrophs oxidize only methane completely, while methylotrophs can oxidize any compound containing a methyl group.
Methanotrophs and methylotrophs are two kinds of microorganisms that are equipped for oxidizing various sorts of mixtures.
Methylotrophs can oxidize any compound containing a methyl bunch, including methane. Interestingly, methanotrophs are a subset of methylotrophs that are explicitly adjusted to oxidize methane as their only wellspring of carbon and energy. Methanotrophs can totally oxidize methane to carbon dioxide, while methylotrophs can somewhat oxidize methane to carbon dioxide.
Methanotrophs can't oxidize different mixtures containing a methyl bunch, while methylotrophs can oxidize a more extensive scope of methyl-containing compounds. This is on the grounds that methylotrophs have a more different arrangement of chemicals that can oxidize different methyl-containing compounds. Methanotrophs, then again, have a particular arrangement of catalysts that are adjusted explicitly for the oxidation of methane.
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750 ml of nitrogen gas is observed at 2.56atm. What is the pressure if the volume becomes 985ml?
Boyle's Law-
[tex]\:\:\:\:\:\:\:\:\:\:\:\star\:\sf \underline{ P_1 \: V_1=P_2 \: V_2}\\[/tex]
(Pressure is inversely proportional to the volume)
Where-
[tex]\sf V_1[/tex] = Initial volume[tex]\sf V_2[/tex] = Final volume[tex]\sf P_1[/tex] = Initial pressure[tex]\sf P_2[/tex] = Final pressureAs per question, we are given that -
[tex]\sf V_1[/tex] = 750 mL[tex]\sf P_1[/tex] = 2.56 atm[tex]\sf V_2[/tex] = 985 mLNow that we have all the required values and we are asked to find out the final pressure, so we can put the values and solve for the final pressure of nitrogen -
[tex]\:\:\:\:\:\:\:\:\:\:\:\:\:\:\:\star\:\sf \underline{ P_1 \: V_1=P_2 \: V_2}[/tex]
[tex]\:\:\:\: \:\:\:\:\:\:\longrightarrow \sf 2.56\times 750 = P_2 \times 985\\[/tex]
[tex] \:\:\:\:\:\:\:\:\:\:\longrightarrow \sf P_2 = \dfrac{2.56 \times 750}{985}\\[/tex]
[tex] \:\:\:\:\:\:\:\:\:\:\longrightarrow \sf P_2 = \cancel{\dfrac{ 1920}{985}}\\[/tex]
[tex]\:\:\:\: \:\:\:\:\:\:\longrightarrow \sf P_2 = 1.94923........ \\[/tex]
[tex] \:\:\:\:\:\:\:\:\:\:\longrightarrow \sf \underline{P_2 = 1.95 \: atm}\\[/tex]
Therefore,the pressure will become 1.95 atm if the volume becomes 985mL.
calculate the ph of a buffer containing 0.31 m acetic acid and 0.27 m sodium acetate (pka of acetic acid is 4.74).
The pH of the buffer containing acetic acid and sodium actetate is found to be 1.14.
The pH of a solution containing the acid and the salt is given as,
pH = pKa + log[acid]/[salt]
In this case it is given that buffer containes 0.31M of acetic acid and 0.27M of sodium acetate. The pKa value of acetic acid is given to be 4.71. Now, as be have all the values, putting them in the formula and proceeding,
pH = (4.72) + log[0.31]/[0.27]
pH = 4.72 - 2.86
pH = 1.85
Hence, the pH of the buffer is found to be 1.14.
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What volume (in mL) of 18.0 Molarity H2SO4 is needed to contain 2.45 grams of H2SO4
Answer:
1.39 mL
Explanation:
To determine the volume of 18.0 Molarity [tex]H_{2} SO_4[/tex] needed to contain 2.45 grams of [tex]H_{2} SO_4[/tex], we can use the following formula:
moles of solute = mass of solute / molar mass of solute
Then, we can use the molarity formula:
Molarity = moles of solute / volume of solution (in liters)
Rearranging this formula, we get:
volume of solution (in liters) = moles of solute / Molarity
First, we need to calculate the moles of [tex]H_{2} SO_4[/tex]:
moles of [tex]H_{2} SO_4[/tex] = mass of [tex]H_{2} SO_4[/tex] / molar mass of [tex]H_{2} SO_4[/tex]
The molar mass of [tex]H_{2} SO_4[/tex] is:
2(1.008 g/mol) + 32.06 g/mol + 4(16.00 g/mol) = 98.08 g/mol
Therefore, the moles of [tex]H_{2} SO_4[/tex] are:
moles of [tex]H_{2} SO_4[/tex] = 2.45 g / 98.08 g/mol = 0.02497 mol
Next, we can calculate the volume of 18.0 Molarity [tex]H_{2} SO_4[/tex] needed:
volume of solution (in liters) = moles of solute / Molarity
volume of solution (in liters) = 0.02497 mol / 18.0 mol/L = 0.001387 L
Finally, we can convert the volume to milliliters:
volume of solution (in mL) = 0.001387 L x 1000 mL/L = 1.39 mL
Therefore, approximately 1.39 mL of 18.0 Molarity [tex]H_{2} SO_4[/tex] is needed to contain 2.45 grams of [tex]H_{2} SO_4[/tex].