Mamatkulov Shavkat, Polák Jakub, Razzokov Jamoliddin, Tomaník Lukáš, Slavíček Petr, Dzubiella Joachim, Kanduč Matej, Heyda Jan
Institute of Material Science of AS, Ch.Aytmatov str.2B, 100084 Tashkent, Uzbekistan.
Department of Physical Chemistry, University of Chemistry and Technology, Prague, Technická 5, 16628 Prague 6, Czech Republic.
J Chem Theory Comput. 2024 Feb 13;20(3):1263-1273. doi: 10.1021/acs.jctc.3c01020. Epub 2024 Jan 16.
The borohydride ion, BH, is an essential reducing agent in many technological processes, yet its full understanding has been elusive, because of at least two significant challenges. One challenge arises from its marginal stability in aqueous solutions outside of basic pH conditions, which considerably limits the experimental thermodynamic data. The other challenge comes from its unique and atypical hydration shell, stemming from the negative excess charge on its hydrogen atoms, which complicates the accurate modeling in classical atomistic simulations. In this study, we combine experimental and computer simulation techniques to devise a classical force field for NaBH and deepen our understanding of its characteristics. We report the first measurement of the ion's activity coefficient and extrapolate it to neutral pH conditions. Given the difficulties in directly measuring its solvation free energies, owing to its instability, we resort to quantum chemistry calculations. This combined strategy allows us to derive a set of nonpolarizable force-field parameters for the borohydride ion for classical molecular dynamics simulations. The derived force field simultaneously captures the solvation free energy, the hydration structure, as well as the activity coefficient of NaBH salt across a broad concentration range. The obtained insights into the hydration shell of the BH ion are crucial for accurately modeling and understanding its interactions with other molecules, ions, materials, and interfaces.
硼氢根离子(BH)是许多技术过程中必不可少的还原剂,然而由于至少两个重大挑战,对其全面理解一直难以实现。一个挑战源于它在碱性pH条件以外的水溶液中稳定性较差,这极大地限制了实验热力学数据。另一个挑战来自其独特且非典型的水合壳层,这是由其氢原子上的负电荷过剩导致的,这使得在经典原子模拟中进行准确建模变得复杂。在本研究中,我们结合实验和计算机模拟技术,为NaBH设计了一个经典力场,并加深了对其特性的理解。我们报告了该离子活度系数的首次测量,并将其外推至中性pH条件。鉴于由于其不稳定性直接测量其溶剂化自由能存在困难,我们求助于量子化学计算。这种联合策略使我们能够为硼氢根离子推导一组用于经典分子动力学模拟的非极化力场参数。所推导的力场同时捕捉了溶剂化自由能、水合结构以及NaBH盐在广泛浓度范围内的活度系数。对BH离子水合壳层获得的见解对于准确建模和理解其与其他分子、离子、材料及界面的相互作用至关重要。