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利用铁电极化调控定向电荷载流子传输以增强光电化学水氧化反应

Engineering Directional Charge Carrier Transport Using Ferroelectric Polarization for Enhanced Photoelectrochemical Water Oxidation.

作者信息

Xu Qian, Berardan David, Brisset François, Colbeau-Justin Christophe, Ghazzal Mohamed Nawfal

机构信息

Institut de Chimie Physique, Université Paris-Saclay, UMR 8000 CNRS, Orsay, 91405, France.

Institut de Chimie Moléculaire et des Matériaux d'Orsay(ICMMO), Université Paris-Saclay, UMR 8182 CNRS, Orsay, 91405, France.

出版信息

Small. 2024 Jun;20(23):e2308750. doi: 10.1002/smll.202308750. Epub 2024 Jan 10.

Abstract

Introducing ferroelectric polarization has shown great potential to facilitate interfacial charge separation in photoelectrochemical (PEC) water splitting. However, unambiguous evidence of the actual influence of spontaneous ferroelectric polarization, as compared to heterojunction formation, on electron extraction and PEC water splitting is still lacking to date. Herein, core-shell BaTiO3/TiO nanostructures are designed as photoanodes based on paraelectric cubic and ferroelectric tetragonal phases BaTiO (BTO) perovskite. The cubic and tetragonal crystalline phases are stabilized using selected elaboration methods. Compared to the paraelectric cubic (c-BTO), the ferroelectric tetragonal (t-BTO) leads to a favorable ferroelectric polarization, enhancing directional charge separation and as a consequence to increased photocurrent up to a factor of 1.95. More interestingly, the charge separation efficiency can be tuned by applying positive or negative polarization, with the highest charge separation obtained for the positive one. When loading Ni(OH) as a cocatalyst on the t-BTO@TiO photoanode, the Ni(OH)/TiO/t-BTO exhibits a high performance and superior stability toward PEC water oxidation with a photocurrent almost 6.7 times that of the reference SiO@TiO. The proposed facilitation may open an avenue to engineer charge separation and transport for high-performance PEC water oxidation.

摘要

引入铁电极化在促进光电化学(PEC)水分解中的界面电荷分离方面已显示出巨大潜力。然而,与异质结形成相比,自发铁电极化对电子提取和PEC水分解实际影响的确切证据至今仍缺乏。在此,基于顺电立方相和铁电四方相的钛酸钡(BTO)钙钛矿,设计了核壳结构的BaTiO₃/TiO纳米结构作为光阳极。通过选定的制备方法稳定立方相和四方相晶体。与顺电立方相(c-BTO)相比,铁电四方相(t-BTO)产生有利的铁电极化,增强了定向电荷分离,结果使光电流增加高达1.95倍。更有趣的是,电荷分离效率可通过施加正极化或负极化来调节,正极化时电荷分离最高。当在t-BTO@TiO光阳极上负载Ni(OH)作为助催化剂时,Ni(OH)/TiO/t-BTO对PEC水氧化表现出高性能和卓越稳定性,其光电流几乎是参考SiO@TiO的6.7倍。所提出的促进作用可能为设计用于高性能PEC水氧化的电荷分离和传输开辟一条途径。

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