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MXene衍生的TiC-TiO耦合NiCo LDH:一种用于增强光催化产HO和H的二维/三维界面工程化S型异质结

MXene Derived TiC-TiO Coupled NiCo LDH: A 2D/3D Interfacial Engineered S-Scheme Heterojunction for Enhanced Photocatalytic HO and H Production.

作者信息

Biswal Lijarani, Sahoo Dipti Prava, Mohanty Upali Aparajita, Parida Kulamani

机构信息

Centre for Nano Science and Nanotechnology, Siksha "O" Anusandhan (Deemed to be University), Bhubaneswar, Odisha 751030, India.

出版信息

Langmuir. 2025 Sep 2;41(34):23182-23197. doi: 10.1021/acs.langmuir.5c03086. Epub 2025 Aug 19.

Abstract

Superior S-scheme heterojunction based photocatalysis is in the forefront as a sustainable approach for quenching the current energy thirst owing to its augmented charge pair separation kinetics and preserved redox ability. Herein, we fabricated an S-scheme/Schottky triphase heterojunction of TiC MXene derived TiO modified NiCo LDH by a two-step hydrothermal process. The structural and morphological analyses evidenced that the 3D NiCo LDH nanoflower fruitfully incorporated on the 2D TiC@TiO nanosheet to form a TiC@TiO/NiCo LDH 2D/3D engineered interface. The TiC@TiO/NiCo LDH (20 wt %) nanohybrid exhibited superior photocatalytic HO and H production rates compared to the NiCo LDH and TiC@TiO neat counterparts. The enhanced performance was credited to the combined influence of the S-scheme and Schottky junctions, effectively lowering charge transfer resistance and enhancing the separation ability, as supported by PL, EIS, and TPC analyses. The metallic character and high conductivity of TiC provide more active sites through the Schottky junction for photocatalytic reaction. Moreover, due to the open void nanoflower structure of NiCo LDH, the diffusion distance was shortened, mass transport accelerated, and light reflection and scattering were enhanced. The S-scheme charge transfer mechanism was validated by scavenging and EPR analysis. This research shows in-depth understanding to design S-scheme/Schottky heterojunctions for solar to chemical energy conversion.

摘要

基于S型异质结的光催化作为一种可持续的方法处于前沿地位,可满足当前的能源需求,这是由于其增强的电荷对分离动力学和保留的氧化还原能力。在此,我们通过两步水热法制备了由TiC MXene衍生的TiO修饰的NiCo LDH的S型/肖特基三相异质结。结构和形态分析表明,3D NiCo LDH纳米花成功地结合在2D TiC@TiO纳米片上,形成了TiC@TiO/NiCo LDH二维/三维工程界面。与纯NiCo LDH和TiC@TiO相比,TiC@TiO/NiCo LDH(20 wt%)纳米杂化物表现出优异的光催化产羟基自由基和产氢速率。PL、EIS和TPC分析表明,性能的提高归因于S型和肖特基结的综合影响,有效地降低了电荷转移电阻并提高了分离能力。TiC的金属特性和高导电性通过肖特基结为光催化反应提供了更多的活性位点。此外,由于NiCo LDH的开放孔隙纳米花结构,扩散距离缩短,传质加速,光反射和散射增强。通过清除和EPR分析验证了S型电荷转移机制。这项研究展示了对设计用于太阳能到化学能转换的S型/肖特基异质结的深入理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d697/12409884/08f24085dc5e/la5c03086_0009.jpg

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