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用于增强析氢活性的 BaTiO 中表面电子态的铁电调制

Ferroelectric Modulation of Surface Electronic States in BaTiO for Enhanced Hydrogen Evolution Activity.

作者信息

Abbasi Pedram, Barone Matthew R, de la Paz Cruz-Jáuregui Ma, Valdespino-Padilla Duilio, Paik Hanjong, Kim Taewoo, Kornblum Lior, Schlom Darrell G, Pascal Tod A, Fenning David P

机构信息

Department of NanoEngineering, University of California San Diego, La Jolla, California 92093, United States.

Department of Materials Science and Engineering, Cornell University, Ithaca, New York 14853, United States.

出版信息

Nano Lett. 2022 May 25;22(10):4276-4284. doi: 10.1021/acs.nanolett.2c00047. Epub 2022 May 2.

Abstract

Ferroelectric nanomaterials offer the promise of switchable electronic properties at the surface, with implications for photo- and electrocatalysis. Studies to date on the effect of ferroelectric surfaces in electrocatalysis have been primarily limited to nanoparticle systems where complex interfaces arise. Here, we use MBE-grown epitaxial BaTiO thin films with atomically sharp interfaces as model surfaces to demonstrate the effect of ferroelectric polarization on the electronic structure, intermediate binding energy, and electrochemical activity toward the hydrogen evolution reaction (HER). Surface spectroscopy and DFT+U calculations of the well-defined (001) surfaces indicate that an upward polarized surface reduces the work function relative to downward polarization and leads to a smaller HER barrier, in agreement with the higher activity observed experimentally. Employing ferroelectric polarization to create multiple adsorbate interactions over a single electrocatalytic surface, as demonstrated in this work, may offer new opportunities for nanoscale catalysis design beyond traditional descriptors.

摘要

铁电纳米材料有望在表面实现可切换的电子特性,这对光催化和电催化具有重要意义。迄今为止,关于铁电表面在电催化中作用的研究主要局限于会出现复杂界面的纳米颗粒体系。在此,我们使用分子束外延生长的具有原子级锐界面的BaTiO薄膜作为模型表面,来证明铁电极化对电子结构、中间结合能以及析氢反应(HER)电化学活性的影响。对明确的(001)表面进行的表面光谱和DFT+U计算表明,相对于向下极化,向上极化的表面会降低功函数,并导致更小的析氢反应能垒,这与实验观察到的更高活性一致。如本工作所示,利用铁电极化在单个电催化表面上创建多种吸附质相互作用,可能为超越传统描述符的纳米级催化设计提供新机会。

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