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用于高效光催化析氢的调制超薄NiCo-LDH纳米片修饰的富Zr缺陷NH-UiO-66纳米结构

Modulated Ultrathin NiCo-LDH Nanosheet-Decorated Zr-Rich Defective NH-UiO-66 Nanostructure for Efficient Photocatalytic Hydrogen Evolution.

作者信息

Sk Saddam, Jamma Aparna, Gavali Deepak S, Bhasin Vidha, Ghosh Rajib, Sudarshan Kathi, Thapa Ranjit, Pal Ujjwal

机构信息

Department of Energy & Environmental Engineering, CSIR-Indian Institute of Chemical Technology, Hyderabad 500007, India.

Academy of Scientific and Innovative Research (AcSIR), Ghaziabad 201002, India.

出版信息

ACS Appl Mater Interfaces. 2023 Dec 6;15(48):55822-55836. doi: 10.1021/acsami.3c13009. Epub 2023 Nov 23.

Abstract

Defect engineering through modification of their surface linkage is found to be an effective pathway to escalate the solar energy conversion efficiency of metal-organic frameworks (MOFs). Herein, defect engineering using controlled decarboxylation on the NH-UiO-66 surface and integration of ultrathin NiCo-LDH nanosheets synergizes the hydrogen evolution reaction (HER) under a broad visible light regime. Diversified analytical methods including positron annihilation lifetime spectroscopy were employed to investigate the role of Zr-rich defects by analyzing the annihilation characteristics of positrons in NH-UiO-66, which provides a deep insight into the effects of structural defects on the electronic properties. The progressively tuned photophysical properties of the NiCo-LDH@NH-UiO-66-D-heterostructured nanocatalyst led to an impressive rate of HER (∼2458 μmol h g), with an apparent quantum yield of ∼6.02%. The ultrathin NiCo-LDH nanosheet structure was found to be highly favored toward electrostatic self-assembly in the heterostructure for efficient charge separation. Coordination of Zr on the surface of the NiCo-LDH nanosheet support through NH-UiO-66 was confirmed by X-ray absorption spectroscopy and electron paramagnetic resonance spectroscopy techniques. Femtosecond transient absorption spectroscopy studies unveiled a photoexcited charge migration process from MOF to NiCo-LDH which favorably occurred on a picosecond time scale to boost the catalytic activity of the composite system. Furthermore, the experimental finding and HER activity are validated by density functional theory studies and evaluation of the free energy pathway which reveals the strong hydrogen binding over the surface and infers the anchoring effect of the ultrathin layered double hydroxide (LDH) in the vicinity of the Zr cluster with a strong host-guest interaction. This work provided a novel insight into efficient photocatalysis via defect engineering at the linker modulation in MOFs.

摘要

通过修饰其表面连接来进行缺陷工程被发现是提高金属有机框架(MOF)太阳能转换效率的有效途径。在此,利用NH-UiO-66表面的可控脱羧作用进行缺陷工程,并整合超薄NiCo-LDH纳米片,在宽可见光范围内协同促进析氢反应(HER)。采用包括正电子湮没寿命谱在内的多种分析方法,通过分析正电子在NH-UiO-66中的湮没特性来研究富Zr缺陷的作用,这为深入了解结构缺陷对电子性质的影响提供了依据。NiCo-LDH@NH-UiO-66-D异质结构纳米催化剂逐渐调整的光物理性质导致了令人印象深刻的HER速率(约2458 μmol h g),表观量子产率约为6.02%。发现超薄NiCo-LDH纳米片结构在异质结构中非常有利于静电自组装以实现有效的电荷分离。通过X射线吸收光谱和电子顺磁共振光谱技术证实了通过NH-UiO-66在NiCo-LDH纳米片载体表面的Zr配位。飞秒瞬态吸收光谱研究揭示了从MOF到NiCo-LDH的光激发电荷迁移过程,该过程在皮秒时间尺度上有利地发生,以提高复合体系的催化活性。此外,通过密度泛函理论研究和自由能途径评估验证了实验发现和HER活性,该评估揭示了表面上强烈的氢结合,并推断出超薄层状双氢氧化物(LDH)在Zr簇附近具有强主客体相互作用的锚定效应。这项工作通过MOF中连接体调制的缺陷工程为高效光催化提供了新的见解。

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