不想看的... 想直接找我印的... 可以直接出去了....XD 1. [Ag]o = 4.29 * 10^-4 M [(S2O3)2-]o = 2.86 M Ag+ + 2 S2O3 2- --> Ag((S2O3)2)3- 初 4.29 * 10^-4 2.86 0 末 ~0 ~2.86 4.29 * 10^-4 所以 [Ag((S2O3)2)3-] = 4.29 * 10^-4 M [Ag((S2O3)2)3-] 又 k2 = ------------------------- [Ag(S2O3)-] [(S2O3)2-] 所以[Ag(S2O3)-] = 3.8 * 10^-9 M 從 K1 可以得到 [Ag+]= 1.8 * 10^-18 M 2. 滴定Asprin得NaOH = 50 * 0.5 - 31.92 * 0.289 = 15.8 (m mole) 所以 15.8 ------ * 180.2 = 1420 (mg) = 1.42 (g) 2 1.42 / 1.427 = 0.995 = 99.5% 3. Cr3+ + H2EDTA --> CrEDTA- + 2 H+ 初 0.001 0.05 0 10^-6 末 0 0.049 0.001 10^-6 平衡 x 0.049 + x 0.001 - x 10^-6 (0.01 - x ) * (10^-6)^2 Kf = --------------------------- 其中..-x +x 可忽略 因x太小 ( 0.049 + x ) * x x = [Cr3+] = 2 * 10^-37 M 4. NH4+ <--> NH3 + H+ CN- + H2O <--> HCN + OH- +) 2 H2O <--> H3O+ + OH- ----------------------------------- NH4+ + CN- <--> HCN + NH3 [HCN] [NH3] [H+] [NH3] [HCN] 1 K = --------------- = ------------ * ------------ = Ka(NH4+) * -------- [NH4+] [CN-] [NH4+] [H+] [CN-] Ka(HCN) 5.6 * 10^-10 x^2 = -------------- = 0.90 = --------------- 6.2 * 10^-10 ( 0.1 - x )^2 所以 x = [NH3] = [HCN] = 4.9 * 10^-2 M [H+] = Ka * [HCN] / [CN-] = 6 * 10^-10 M 所以 pH = 9.22 5. (a) x^2 --------- = 6.2 * 10^-10 1 - x 所以 x = [H+] = 2.5 * 10^-5 M (b) x^2 ------------------ = 6.2 * 10^-10 1.0 * 10^-4 - x x = 2.5 * 10^-7 M 因為極稀溶液 所以須考慮水的解離 1 所以 6.2 * 10^-10 = Ka = --------------------------- 10^-14 - [H+]^2 - 10^-14 ----------------- [H+] [H+] 設為 3.0 * 10^-7 帶入.. 可以解得 [H+] = 2.68 * 10^-7 在帶回原式 得[H+] = 2.7 * 10^-7 所以 pH = 6.57 6. (a) ΔG°= 3 * 191.2 - 78.2 = 495.4 (KJ) ΔH°= 3 * 241.3 - 132.8 = 591.1 (KJ) ΔH° - ΔG° ΔS°= ------------- = 321 (J/K) T (b) ΔG° = -R * T * LnK 所以 K = 1.47 * 10^-87 (c) ΔH° 和 ΔG° are temperature independent ΔG° = 591.1 (KJ) - 3000 * 0.321 (KJ/K) = -372(KJ) - ΔG°(3000K) 所以 Ln K = ---------------- = 14.9 K = 3 * 10^6 R * T 7. ΔG° = -561 + 2 * -109 - (-797) = 18(KJ) ΔG° = -R * T * Ln Ksp 所以 Ksp = 7 * 10^-4 8. Kp = Pco2 所以 Pco2 要大於 Ksp 才能防止 Ag2CO3 分解 K2 ΔH° 1 1 由 Ln ---- = ------ * ( ----- - ----- ) K1 R 298 383 K = 7.5(torr) Pco2 > 7.5 torr 9. 3 O2 --> 2 O3 ΔH° = 2 * 143 = 286 (KJ) ΔG° = 2 * 163 = 326 (KJ) 所以 Ln K = - ΔG° / ( R * T ) 可以得到 K = 7.22 * 10^-58 求在 230K 下的 K 值 K2 ΔH° 1 1 Ln ---- = ------ * ( ---- - ---- ) K1 R T1 T2 7.22 * 10^-8 286 * 10^3 1 1 Ln ---------------- = ------------ * ( ----- - ----- ) = 34.13 K(230K) 8.314 230 298 可得 K(230K) = 1.1 * 10^-72 Po3^2 Po3^2 又 K(230K) = ------- = ------------ 可得 Po3 = 3.3 * 10^-41 Po2^3 1.0 * 10^3 從 PV = nRT ， V = 9.5 * 10^-17 (L) --> 一個 O3 分子所佔的體積 所以兩個 O3 在 9.5 * 10^-17 升的體積中時，反應並不平衡，碰撞也不會發生 Thus the couceutration of ozone is not large enough to maintained equilibrium 10. (a) Isothermal: ΔE = 0, ΔH = 0 nRT nRT w = - P*ΔV = - 2.45 * 10^3 * ( ------------- - -------------- ) * 101.3 2.45 * 10^-3 2.45 * 10^-2 = -2230(J) q = -w = 2230(J) P1 2.45 * 10^-2 ΔS = n * R * Ln(----) = 1 * 8.314 * -------------- = 19.1 (J/K) P2 2.45 * 10^-3 ΔG = ΔH - T * ΔS = 0 - 298 * 19.1 = -5.69(KJ) (b) ΔE = 0, ΔH = 0, ΔS = 19.1(J/K), ΔG = -5.69(KJ) <-- State Funtion q rev ΔS = ------- 可得 q rev = 5.69 (KJ) T w = -q rev = -5.69(KJ) (c) ΔE = 0, ΔH = 0, ΔS = -19.1(J/K), ΔG = 5.69(KJ) <--符號相反 1 1 w = -2.45 * 10^-2 *(-------------- - --------------)* 101.3 = 22.3(KJ) 2.45 * 10^-2 2.45 * 10^-3 q = -w = -22.3(KJ) (d) ^ __________ (a) | __________ (b) | __________ (c) | 2.45*10^-2 | |.¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯¯| | | . | | | . | | | . | | | . | | | . | | | . | | | . | 2.45*10^-3 | |___________________.| | | |________|____________________|_______________ V1 V2 (e) -q actual ΔSsurr = ----------- T - 2230 所以 ΔSsurr,a = -------- = -7.48(J/K) 298 ΔSsurr,b = - ΔS = -7.48(J/K) 22300 ΔSsurr,c = -------- = 74.8(J/K) 298 -- ※ 發信站: 批踢踢實業坊(ptt.cc) ◆ From: 218.166.129.221 ※ 編輯: shujeff 來自: 218.166.128.64 (04/02 02:17)