首页> 外文OA文献 >Superprotonic Phase Transitions in Solid Acids: Parameters affecting the presence and stability of superprotonic transitions in the MHnXO4 family of compounds (X=S, Se, P, As; M=Li, Na, K, NH4, Rb, Cs)
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Superprotonic Phase Transitions in Solid Acids: Parameters affecting the presence and stability of superprotonic transitions in the MHnXO4 family of compounds (X=S, Se, P, As; M=Li, Na, K, NH4, Rb, Cs)

机译:固体酸中的超纯相转变:影响mHnXO4化合物家族中超顺反转变的存在和稳定性的参数(X = s,se,p,as; m = Li,Na,K,NH4,Rb,Cs)

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摘要

The present work attempted to uncover the structural and chemical parameters that favor superprotonic phase transitions over melting or decomposition in the MHXO4, MH2ZO4, and mixed MHXO4-MH2ZO4 classes of compounds (X=S, Se; Z=P, As; M=Li, Na, K, NH4, Rb, Cs) and to thereby gain some ability to "engineer" the properties of solid acids for applications. Three approaches are described. First, the general observation that larger cations enable superprotonic transitions was investigated in both the isostructural M2(HSO4)(H2PO4) and non-isostructural MHSO4 family of compounds. The results of these studies confirmed and explained such a cation size effect, and also supplied a crystal-chemical measure for determining the likelihood of a compound undergoing a phase transition. Second, the entropic driving force behind the transitions was explored in the mixed CsHSO4-CsH2PO4 system of compounds. From these investigations, a general set of rules for calculating the entropy change of a superprotonic transition was established and the role of entropy in the transitions illuminated. Finally, the superprotonic phase transition of CsHSO4 was simulated by molecular dynamics, with which means the transition was probed in ways not possible through experimental methods. A sufficiently general approach was utilized so as to be applicable to other (as yet un-synthesized) compounds, thereby speeding up the process of discovering novel superprotonic solid acids. All three approaches increase the fundamental understanding of which chemical/structural features facilitate superprotonic transitions and should aid attempts to create new solid acids with properties ideal for application.
机译:本工作试图揭示在MHXO4,MH2ZO4和混合MHXO4-MH2ZO4类化合物(X = S,Se; Z = P,As; M = Li)中有利于超质子相变而不是熔融或分解的结构和化学参数,Na,K,NH4,Rb,Cs),从而获得“工程化”固体酸特性的应用能力。描述了三种方法。首先,在同结构M2(HSO4)(H2PO4)和非同结构MHSO4化合物家族中研究了较大阳离子能实现超质子跃迁的一般观察。这些研究的结果证实并解释了这种阳离子尺寸的影响,并且还提供了一种晶体化学方法来确定化合物发生相变的可能性。其次,在化合物的混合CsHSO4-CsH2PO4体系中探索了转变背后的熵驱动力。通过这些研究,建立了计算超质子跃迁熵变化的通用规则集,并阐明了熵在跃迁中的作用。最后,通过分子动力学模拟了CsHSO4的超质子相变,这意味着通过实验方法无法探测到这种相变。利用了足够通用的方法以适用于其他(尚未合成的)化合物,从而加快了发现新型超质子固体酸的过程。所有这三种方法都增加了对哪些化学/结构特征促进超质子跃迁的基本了解,并应有助于尝试创建具有理想应用特性的新型固体酸。

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