The Wolfson Department of Chemical Engineering, Technion-Israel Institute of Technology, Haifa 3200003, Israel.
Schulich Faculty of Chemistry, Technion-Israel Institute of Technology, Haifa 3200003, Israel.
J Phys Chem Lett. 2022 Nov 3;13(43):10216-10221. doi: 10.1021/acs.jpclett.2c02637. Epub 2022 Oct 26.
Solvent molecules are known to affect chemical reactions, especially if they interact with one or more of the reactants or catalysts. In ion microsolvation, i.e., solvent molecules in the first solvation sphere, strong electronic interactions are created, leading to significant changes in charge distribution and consequently on their nucleophilicity/electrophilicity and acidity/basicity. Despite a long history of research in the field, fundamental issues regarding the effects of ion microsolvation are still open, especially in the condensed phase. Using reactions between hydroxide and relatively stable quaternary ammonium salts as an example, we show that water microsolvation can change hydroxide's chemoselectivity by differently affecting its basicity and nucleophilicity. In this example, the hydroxide reactivity as a nucleophile is less affected by water microsolvation than its reactivity as a base. These disparities are discussed by calculating and comparing oxidation potentials and polarizabilities of the different water-hydroxide clusters.
溶剂分子已知会影响化学反应,特别是如果它们与一个或多个反应物或催化剂相互作用。在离子微溶剂化中,即第一溶剂化球中的溶剂分子,会产生强烈的电子相互作用,导致电荷分布发生显著变化,从而影响其亲核性/亲电性和酸碱性。尽管该领域的研究历史悠久,但离子微溶剂化的影响仍存在一些基本问题,特别是在凝聚相中。我们以氢氧根和相对稳定的季铵盐之间的反应为例,表明水微溶剂化可以通过不同程度地影响其碱性和亲核性来改变氢氧根的化学选择性。在这个例子中,氢氧根作为亲核试剂的反应性受水微溶剂化的影响小于其作为碱的反应性。通过计算和比较不同水-氢氧根团簇的氧化电位和极化率,讨论了这些差异。