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Q:
Write the net cell equation for the electrochemical cell. Phases are optional. Do not include the concentrations. \[ \mathrm{Sn}(\mathrm{s})\left|\mathrm{Sn}^{2+}(\mathrm{aq}, 0.0155 \mathrm{M}) \| \mathrm{Ag}^{+}(\mathrm{aq}, 1.50 \mathrm{M})\right| \mathrm{Ag}(\mathrm{s}) \] net cell equation: \( \mathrm{Sn}(\mathrm{s})+2 \mathrm{Ag}^{+}(\mathrm{aq}) \longrightarrow \mathrm{Sn}^{2+}(\mathrm{aq})+2 \mathrm{Ag}(\mathrm{s}) \) Calculate \( E_{\text {cell }}^{\circ} \) and \( E_{\text {cell }} \) at \( 25^{\circ} \mathrm{C} \), using standard potentials as needed.
Q:
An unknown metal at \( 100.0^{\circ} \mathrm{C} \) with specific heat \( 1.14 \frac{\mathrm{~J}}{\mathrm{~g}^{\circ} \mathrm{C}} \) is placed in \( 750 . \mathrm{g} \) of water at \( 25.0^{\circ} \mathrm{C} \). The final temperature of the water is \( 28.6^{\circ} \mathrm{C} \). What was the mass of the metal? - Round your answer to the nearest integer. - Use \( 4.184 \frac{\mathrm{~J}}{\mathrm{~g}^{\circ} \mathrm{C}} \) for the specific heat of water. Provide your answer below:
Q:
Question 30. g of an unknown substance at \( 120.0^{\circ} \mathrm{C} \) is placed in 600.0 g of water at \( 30.0^{\circ} \mathrm{C} \). The final temperature of the water is \( 31.4^{\circ} \mathrm{C} \). What was the specific heat of the metal? - Round your answer to one decimal place - Use \( 4.184 \frac{\mathrm{~J}}{\mathrm{~g} \mathrm{C}} \) for the specific heat of water. Provide your answer below: line
Q:
Which of the following salts is water soluble? \( \begin{array}{l}\text { KClO3 } \\ \text { O BaSO4 } \\ \text { O } \\ \mathrm{Ag3PO} 4 \\ \mathrm{FeCO} 3\end{array} \)
Q:
Which one of the following is a strong acid? HF HNO 2 HBrO HCN HI
Q:
Which one of the following is NOT a soluble base? \( \begin{array}{l}\mathrm{O} \mathrm{CsOH} \\ \mathrm{KOH} \\ O \mathrm{Fe}(\mathrm{OH}) 2 \\ \mathrm{Ca}(\mathrm{OH}) 2 \\ \mathrm{Oa}(\mathrm{OH}) 2\end{array} \)
Q:
Witherite is a mineral that contains barium carbonate and nonreactive material. If a 1.68 gram sample of witherite were to react completely with 24.6 mL of 0.2558 M HCl , what is the percent of barium carbonate in the sample? The balanced reaction is shown below. \( 1 \mathrm{BaCO}_{3}+2 \mathrm{HCl} \gg \mathrm{BaCl}_{2}+\mathrm{CO}_{2}+\mathrm{H}_{2} \mathrm{O} \) Use the variation: \( \%= \) (mass pure \( \left.\mathrm{BaCO}_{3}\right) / \) (mass witherite) \( \times 100 \)
Q:
4) For one Chemistry test. Nancy had to answer 25 questions, Or these questions, Nancy answered \( 80 \% \) of them correctly. How many questions did Nancy correctly answer on her test? Round your answer to the nearest whole number if necessary.
Q:
Silver nitrate \& calcium chloride react to produce a thick white precipitate of silver chloride, according to the reaction below. How many grams of silver chloride should be expected if 195 mL of 6.00 M silver nitrate and 225 mL of 3.00 M calcium chloride react? \( 2 \mathrm{AgNO}_{3}+1 \mathrm{CaCl}_{2} \rightarrow 2 \mathrm{AgCl}+1 \mathrm{Ca}\left(\mathrm{NO}_{3}\right)_{2} \)
Q:
Ethanol burns in air according to the reaction below. When 250.0 grams of ethanol \( \left(\mathrm{C}_{2} \mathrm{H}_{6} \mathrm{O}\right) \) reacts with 50.0 L of oxygen at STP, calculate the volume of water vapor at STP. \( 2 \mathrm{C}_{2} \mathrm{H}_{6} \mathrm{O}+6 \mathrm{O}_{2} \rightarrow 4 \mathrm{CO}_{2}+6 \mathrm{H}_{2} \mathrm{O} \)
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