Question 31 (1 point) d Write net ionic equations for the following precipitation reactions. 2Klag) t...
Write balanced molecular, ionic and net-ionic equations for 10
reactions
(8 precipitate (P) and 2 neautralization)
Use the next few pages to write balanced MOLECULAR, IONIC, and NET-IONIC equations for 10 reactions that occurred during this laboratory experiment. There are more than 10 possible reactions. Choose precipitation reactions and 2 neutralization reactions. Make sure to include the physical states of all the products. Class (circle one): Precipitation or Neutralization Reaction 1. Molecular: Complete lonic: Net lonic: no I reaction/ no...
write the balanced net ionic equations for the cell reactions
for the following
QUESTIONS Write the balanced, net-ionic equations for the sell reactions for the following half-cell combinations at standard conditions. Bc sure to consider direction of 1. spontaneicy a. Cu/Cu, Zn/Zn2: b. Ag/Ag, Mg/Mg* c. Zn/Zn, Pb/Pb d. Ni/Ni+, Ag/Ag: e. Cu/Cu2t, Mg/Mg*:
Determine whether each of the following equations for precipitation reactions is correct. If not, write the correct equation. If no reaction occurs, choose NO REACTION. Ba(NO3)2(aq)+(NH4)2SO4(aq)→BaSO4(s)+2NH4NO3(aq)Ba(NO3)2(aq)+(NH4)2SO4(aq)→BaSO4(s)+2NH4NO3(aq) correct incorrect no reaction BaS(aq)+2KCl(aq)→BaCl2(s)+K2S(aq)BaS(aq)+2KCl(aq)→BaCl2(s)+K2S(aq) correct incorrect no reaction 2KI(aq)+Pb(NO3)2(aq)→PbI2(s)+2KNO3(aq)2KI(aq)+Pb(NO3)2(aq)→PbI2(s)+2KNO3(aq) correct incorrect no reaction Pb(NO3)2(aq)+2LiCl(aq)→2LiNO3(s)+PbCl2(aq)Pb(NO3)2(aq)+2LiCl(aq)→2LiNO3(s)+PbCl2(aq) correct incorrect no reaction
7. Balance the following precipitation reactions; write the total ionic and net ionic equations. CuCl2(aq) + K,CO3(aq) + CuCO3(s) + KCl(aq) total ionic: net ionic: (b) CuCl(aq) + Na2S(aq) CuS(s) + NaCl(aq) total ionic: net ionic: (c) CuCl(aq) + NH OH(aq) + Cu(OH)2(s) + NH4Cl(aq) total ionic: net ionic: 8. (optional) Write a balanced chemical equation for the addition of aqueous calcium chloride and lithium nitrate solutions. Show the total ionic and net ionic equations.
use solubility rules to write net ionic
(1) Use the solubility rules and write net ionic equations for the following reactions (a) Pb(NO3)2 (aq) + Na2SO4 (b) BaCl2 (aq) + ZnSO4 (aq) (c) (NH4)2CO, (aq) + CaCl2 (aq) (d) Na S (aq) + ZnCl2 (aq)
4. Write net ionic equations for reactions a), b) and d) only in Q. 1 above. 5. a) If the following reactions will take place, complete and balance it. If there is no reaction, state: a) AgNO3(ag) Cu(s) b) Cu(NOs)2 (aq) + Zn(s) c) Pb(NOs)2 (aq) + H2(g) d) AI(s) + HCI(aq) b) Balance the following half reactions in acidic solutions: i) VO2+ (aq) →V" (aq) 6. Balance the following reactions in basic solutions: a) Mno,(aq) + SO, (aq) MnO...
d. CH 206 to (complete combustion) e. C6H12O6 to — (incomplete combustion) Net Ionic equations can be written for double displacement and single displacement reactions. All elements, precipitates, liquids, and lons not appearing on both sides of the equation are shown in a net ionic equation. 14. Write net ionic equations for the following unbalanced equations. a. Na3PO4 (aq) + SrCl2 (aq) → Sr3(PO4)2 (s) + NaCl (aq) b. Bi(NO3)2 (aq) + Na, SO4(aq) → Bi2(SO4)3 (s) + NaNO, (aq)...
3. Write balanced net ionic equations for the following reactions from the spot tests in Part A. Include the states of components (e.g. (aq) if aqueous, (s) if solid) and the final colour of the solution or precipitate, if any. a) AgNO3+ HCI b) Pb(NO3)2+ K2CrO c) Fe(NO3)3 KSCN d) Ni(NOs)2 + H-DMG e) Ba(NO3)2 K2CrO4
Write the balanced complete ionic equations and net ionic equations for the reactions that occur when each of the following solutions are mixed. (Type your answers using the format [NH4]+ for NH4+ or Ca3(PO4)2 for Ca3(PO4)2. Use the lowest possible coefficients.) (a) Pb(NO3)2(aq) and Na2S(aq) complete ionic equation? net ionic equation? (b) Al2(SO4)3(aq) and K3PO4(aq) complete ionic equation? net ionic equation? (c) (NH4)3PO4(aq) and CaCl2(aq) complete ionic equation? net ionic equation?
Write balanced molecular equations for the following potential precipitation reactions. Indicate the states of reactants and products [(aq) or (s)]. (b) In those cases where a precipitate forms, write the net ionic equation. If there is no reaction, state "No reaction." (i) (NH4)2SO4 (aq) + Cr(NO3)3 (aq) → (ii) K2SO4 (aq) + AgNO3 (aq) → (iii) Cr(CH3CO2)3 (aq) + KOH (aq) → (iv) Mg(ClO3)2 (aq) + K3PO4 (aq) → Each of the following salts can be prepared from an acid...