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首页> 外文期刊>International Journal of Quantum Chemistry >Accurate heats of formation and acidities for H3PO4, H2SO4, and H2CO3 from ab initio electronic structure calculations
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Accurate heats of formation and acidities for H3PO4, H2SO4, and H2CO3 from ab initio electronic structure calculations

机译:从头算电子结构计算得出H3PO4,H2SO4和H2CO3的准确形成热和酸度

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Atomization energies and heats of formation at 0 and 298 K for H2CO3, HCO3-, H2SO4, HSO4-, H3PO4- and H2PO4- were calculated using coupled cluster theory including noniterative, quasi-perturbative triple excitations (CCSD(T)) with large basis sets. Optimized geometries and harmonic vibrational frequencies were calculated at the MP2/aug-cc-pVTZ level. Atomization energies were obtained by extrapolating CCSD(T) valence energies to the complete basis set limit (CBS) using the aug-cc-pV(n+d)Z (n = D, T, Q) basis sets where the +d corresponds to the inclusion of tight d functions for the second row atoms P and S. In order to achieve near chemical accuracy (+/- 1 kcal/ mol) in the thermodynamic properties, a core/valence correction, a Douglas-Kroll-Hess scalar relativistic correction, and a first-order atomic spin-orbit correction were included. The calculated heats of formation of the neutral molecules at 0 K are Delta (HfH2CO3)-H-O() = -275.2, Delta H-f(O)(H2SO4) = -167.9, and Delta H-f(O)(H3PO4) = -268.8 kcal/mol. The only experimental value is Delta H-f(O)(H2SO4) = -172.4 +/- 2, a difference of about 4 kcal/mol. The calculated gas acidities (Delta G) at 298 K are 332.2, 322.2, and 304.6 kcal/mol for H2CO3, H3PO4, and H2SO4, respectively. The calculated values for H3PO4 and H2SO4 are in good agreement with the respective experimental values of 323.0 +/- 4.9 and 302.3 +/- 2.6 kcal/mol. Solution acidities are computed using the fully polarizable continuum model. Using an electron density contour value of 0.001 a.u. to define the cavity for the neutral molecules and of 0.0022 a.u. for the anions, we calculate pK(a)(H2CO3) = 6.3, pK(a)(H3PO4) = 2.5, and pK(a)(HNO3) = -2.4 which are within one pK(a) of the respective experimental values of 6.4, 2.1, and -1.4. We predict the pK(a) of H2SO4 in aqueous solution to be in the range of -6 to -8, significantly lower than the estimated experimental values in the range of -3. (c) 2004 Wiley Periodicals, Inc.
机译:使用耦合簇理论(包括非迭代,拟微扰三次激发(CCSD(T)))计算H2CO3,HCO3-,H2SO4,HSO4-,H3PO4-和H2PO4-在0和298 K时的雾化能量和形成热套。在MP2 / aug-cc-pVTZ级别上计算了优化的几何形状和谐波振动频率。通过使用aug-cc-pV(n + d)Z(n = D,T,Q)基集(其中+ d对应)将CCSD(T)价能外推到完整基集极限(CBS),获得雾化能为了使第二行原子P和S包含紧密的d函数。为了在热力学性质上达到接近化学精度(+/- 1 kcal / mol),需进行核/价校正,Douglas-Kroll-Hess标量相对论校正和一阶原子自旋轨道校正都包括在内。计算得出的在0 K处中性分子形成的热量为Delta(HfH2CO3)-HO()= -275.2,Delta Hf(O)(H2SO4)= -167.9和Delta Hf(O)(H3PO4)= -268.8 kcal /摩尔唯一的实验值是Delta H-f(O)(H2SO4)= -172.4 +/- 2,相差约4 kcal / mol。对于H2CO3,H3PO4和H2SO4,在298 K下计算出的气体酸度(Delta G)分别为332.2、322.2和304.6 kcal / mol。 H3PO4和H2SO4的计算值分别与323.0 +/- 4.9和302.3 +/- 2.6 kcal / mol的实验值非常吻合。溶液酸度是使用完全可极化的连续体模型计算的。使用0.001 a.u的电子密度轮廓值。定义中性分子的腔,且为0.0022a.u。对于阴离子,我们计算出pK(a)(H2CO3)= 6.3,pK(a)(H3PO4)= 2.5和pK(a)(HNO3)= -2.4,它们在各自实验值的一个pK(a)内6.4、2.1和-1.4。我们预测水溶液中H2SO4的pK(a)在-6至-8范围内,大大低于在-3范围内的估计实验值。 (c)2004年Wiley Periodicals,Inc.

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