Liu Chongjing, Sheng Beibei, Zhou Quan, Xia Yujian, Zou Ying, Chimtali Peter Joseph, Cao Dengfeng, Chu Yongheng, Zhao Sirui, Long Ran, Chen Shuangming, Song Li
National Synchrotron Radiation Laboratory, Key Laboratory of Precision and Intelligent Chemistry, School of Nuclear Science and Technology, University of Science and Technology of China, Hefei 230029, China.
Shanghai Advanced Research Institute, Chinese Academy of Sciences, Shanghai 201204, China.
J Am Chem Soc. 2024 Oct 2;146(39):26844-26854. doi: 10.1021/jacs.4c07607. Epub 2024 Sep 19.
Ni-based electrocatalysts have been predicted as highly potential candidates for hydrogen evolution reaction (HER); however, their applicability is hindered by an unfavorable d-band energy level (). Moreover, precise d-band structural engineering of Ni-based materials is deterred by appropriative synthesis methods and experimental characterization. Herein, we meticulously synthesize a special single-iodine-atom structure (I-Ni@C) and characterize the manipulation via resonant inelastic X-ray scattering (RIXS) spectroscopy to fill this gap. The complex catalytic mechanism has been elucidated via synchrotron radiation-based multitechniques (SRMS) including X-ray absorption fine structure (XAFS), in situ synchrotron radiation-based Fourier transform infrared (SR-FTIR) spectroscopy, and near ambient pressure X-ray photoelectron spectroscopy (NAP-XPS). In particular, RIXS is innovatively applied to reveal the precise regulation of Ni of I-Ni@C. Consequently, the role of such single-iodine-atom strategy is confirmed to not only facilitate the moderate of the Ni site for balancing the adsorption/desorption capacities of key intermediates but also act as a bridge to enhance the electronic interaction between Ni and the carbon shell for forming a localized polarized electric field conducive to HO dissociation. As a result, I-Ni@C exhibits an enhanced alkaline hydrogen evolution performance with an overpotential of 78 mV at 10 mA/cm and superior stability, surpassing the majority of the reported Ni-based catalysts. Overall, this study has managed to successfully tailor the d-band center of materials from the SRMS perspective, which has crucial implications for nanotechnology, chemistry, catalysis, and other fields.
镍基电催化剂被认为是析氢反应(HER)极具潜力的候选材料;然而,其适用性受到不利的d带能级的阻碍。此外,镍基材料精确的d带结构工程因合适的合成方法和实验表征而受阻。在此,我们精心合成了一种特殊的单碘原子结构(I-Ni@C),并通过共振非弹性X射线散射(RIXS)光谱对其进行表征以填补这一空白。通过基于同步辐射的多技术手段(SRMS),包括X射线吸收精细结构(XAFS)、原位同步辐射傅里叶变换红外(SR-FTIR)光谱和近常压X射线光电子能谱(NAP-XPS),阐明了复杂的催化机制。特别是,创新性地应用RIXS来揭示I-Ni@C中Ni的精确调控。因此,证实了这种单碘原子策略的作用不仅有助于适度调节Ni位点以平衡关键中间体的吸附/解吸能力,而且还充当桥梁以增强Ni与碳壳之间的电子相互作用,从而形成有利于H₂O解离的局部极化电场。结果,I-Ni@C在10 mA/cm²时过电位为78 mV,表现出增强的碱性析氢性能和优异的稳定性,超过了大多数已报道的镍基催化剂。总体而言,本研究成功地从SRMS角度定制了材料的d带中心,这对纳米技术、化学、催化等领域具有至关重要的意义。