溶剂介质引起的层状宿主 VOPO4-2H2O 内压变化及其对互锁反应的影响

IF 15.6 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Jiahui Liu, Yuan Liu, Timothy Yoo, Miho Itoi, Honggyu Kim, Simon R. Phillpot* and Daniel R. Talham*, 
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引用次数: 0

摘要

选择层状二水合磷酸钒(VOPO4·2H2O)作为二茂铁插层的主体,探讨溶剂-客体和溶剂-主体相互作用对插层速率和产物选择的影响。在排除了与voo4·2H2O主体直接反应的溶剂后,研究了二茂铁在一系列七种本身不嵌入或不改变主体结构的溶剂中的嵌入效果。分析了在丙酮、丁酮、戊酮、乙腈、丙腈、丁腈和DMF中的插层动力学。在DMF中没有观察到插层,但所有其他溶剂都产生阶段1和阶段2的二茂铁插层产物的混合物,反应速率和产物比例在不同的溶剂系列中有所不同。使用非原位和原位PXRD方法,更快的反应产生更多的阶段1产物,而更高程度的阶段2产物被认为是较慢的动力学。这些结果是在插层速率之间的竞争以及插层域和非插层宿主之间弹性应变的积累的背景下解释的。为了理解溶剂效应,我们考虑了溶剂-客体效应和溶剂-主体效应。通常考虑的溶剂-客体效应,如客体脱溶能、介电常数和客体氧化电位,都与观察到的反应动力学无关。另一方面,不同的溶剂环境会改变层状基质内的内部压力Peff,这是纳米尺度颗粒表面能和表面张力(应力)变化的结果。悬浮在DMF和有机腈溶剂中,VOPO4·2H2O层间距减小,而在丙酮、丁酮和戊酮中,VOPO4·2H2O层间距略有分离。根据计算得到的弹性常数,结构变化对应于Peff在0.22 GPa >范围内的变化;ΔPeff祝辞−0.11 GPa的溶剂系列。对压力对二茂铁扩散影响的密度泛函理论分析增加了插层动力学通过改变内压而改变的观点的支持。结果表明,即使溶剂不直接与主体固体发生反应,溶剂环境也会改变插层主体内的有效压力,影响插层速率和产物选择。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Solvent Medium-Induced Changes to Internal Pressure in the Layered Host VOPO4·2H2O and the Influence on Intercalation Reactions

Solvent Medium-Induced Changes to Internal Pressure in the Layered Host VOPO4·2H2O and the Influence on Intercalation Reactions

Layered vanadium phosphate dihydrate, VOPO4·2H2O, has been chosen as a host for ferrocene intercalation to explore the influence of solvent-guest and solvent-host interactions on rates and product selection. After eliminating solvents that react directly with the VOPO4·2H2O host, ferrocene intercalation was evaluated in a series of seven solvents that do not themselves intercalate or otherwise alter the host structure. The intercalation kinetics are analyzed in acetone, butanone, pentanone, acetonitrile, propionitrile, butyronitrile, and DMF. No intercalation is observed in DMF, but all other solvents yield a mixture of stage 1 and stage 2 ferrocenium intercalation products with reaction rates and product ratios varying across the series of solvents. Using ex situ as well as in situ PXRD methods, faster reactions yield more stage 1 product, while a higher degree of stage 2 product is seen for slower kinetics. The results are interpreted in the context of competition between intercalation rates and the buildup of elastic strain between intercalated domains and unintercalated host. To understand solvent effects, both solvent-guest and solvent-host effects are considered. None of the typically considered solvent-guest effects, such as guest desolvation energy, dielectric constant, and guest oxidation potential, correlate with the observed reaction kinetics. On the other hand, different solvent environments are shown to change the internal pressure, Peff, within the layered hosts, a consequence of changing surface energy and surface tension (stress) in particles with nanometer scale dimensions. The VOPO4·2H2O interlayer spacing decreases when particles are suspended in DMF and organonitrile solvents, while the layers separate slightly in acetone, butanone, and pentanone. Using calculated elastic constants, the structural changes correspond to changes in Peff in the range 0.22 GPa > ΔPeff > −0.11 GPa across the series of solvents. A density functional theory analysis of the influence of pressure on ferrocene diffusion adds support for the idea that intercalation kinetics are altered by changing internal pressure. The results show solvent environments can be responsible for altering the effective pressure within intercalation hosts, influencing intercalation rates and product selection, even if the solvents do not react directly with the host solids.

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来源期刊
CiteScore
24.40
自引率
6.00%
发文量
2398
审稿时长
1.6 months
期刊介绍: The flagship journal of the American Chemical Society, known as the Journal of the American Chemical Society (JACS), has been a prestigious publication since its establishment in 1879. It holds a preeminent position in the field of chemistry and related interdisciplinary sciences. JACS is committed to disseminating cutting-edge research papers, covering a wide range of topics, and encompasses approximately 19,000 pages of Articles, Communications, and Perspectives annually. With a weekly publication frequency, JACS plays a vital role in advancing the field of chemistry by providing essential research.
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