Catalysis in Extreme Field Environments: A Case Study of Strongly Ionized SiO2 Nanoparticle Surfaces

IF 14.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Journal of the American Chemical Society Pub Date : 2024-09-27 DOI:10.1021/jacs.4c08550
Thomas M. Linker, Ritika Dagar, Alexandra Feinberg, Samuel Sahel-Schackis, Ken-ichi Nomura, Aiichiro Nakano, Fuyuki Shimojo, Priya Vashishta, Uwe Bergmann, Matthias F. Kling, Adam M. Summers
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Abstract

High electric fields can significantly alter catalytic environments and the resultant chemical processes. Such fields arise naturally in biological systems but can also be artificially induced through localized nanoscale excitations. Recently, strong field excitation of dielectric nanoparticles has emerged as an avenue for studying catalysis in highly ionized environments, producing extreme electric fields. While the dynamics of laser-driven surface ion emission has been extensively explored, understanding the molecular dynamics leading to fragmentation has remained elusive. Here, we employ a multiscale approach performing nonadiabatic quantum molecular dynamics (NAQMD) simulations on hydrogenated silica surfaces in both bare and wetted environments under field conditions mimicking those of an ionized nanoparticle. Our findings indicate that hole localization drives fragmentation dynamics, leading to surface silanol dissociation within 50 fs and charge transfer-induced water splitting in wetted environments within 150 fs. Further insight into such ultrafast mechanisms is critical for the advancement of catalysis on the surface of charged nanosystems.

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极端现场环境中的催化作用:强电离二氧化硅纳米粒子表面案例研究
高电场可以极大地改变催化环境和由此产生的化学过程。这种电场在生物系统中自然产生,但也可以通过局部纳米级激发人为诱导。最近,电介质纳米粒子的强场激发已成为研究高度电离环境中催化作用的一种途径,可产生极端电场。虽然对激光驱动的表面离子发射动力学进行了广泛的探索,但对导致碎裂的分子动力学的理解却一直难以捉摸。在此,我们采用了一种多尺度方法,在模拟电离纳米粒子的场条件下,对裸露和润湿环境中的氢化二氧化硅表面进行了非绝热量子分子动力学(NAQMD)模拟。我们的研究结果表明,空穴定位驱动碎片动力学,在 50 fs 内导致表面硅醇解离,在 150 fs 内导致润湿环境中电荷转移诱导的水分裂。进一步深入了解这种超快机制对于促进带电纳米系统表面的催化作用至关重要。
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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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