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外延金属有机框架介导的按需氢检测电子中继

Epitaxial Metal-Organic Framework-Mediated Electron Relay for H Detection on Demand.

作者信息

Yuan Sailin, Zeng Shicheng, Hu Yan, Kong Weixin, Yang Huanjing, Gong Peng, Xiao Taishi, Wang Huadong, Wan Hengcheng, Li Qiaowei, Sun Zhengzong

机构信息

Department of Chemistry and Shanghai Key Laboratory of Molecular Catalysis and Innovative Materials, Fudan University, Shanghai 200433, PR China.

School of Microelectronics and State Key Laboratory of ASIC and System, Fudan University, Shanghai 200433, PR China.

出版信息

ACS Nano. 2024 Jul 18. doi: 10.1021/acsnano.4c05206.

Abstract

Hydrogen is regarded as one of the most promising clean substitutes for fossil fuels toward a carbon-zero society. However, the safety management of the upcoming hydrogen energy infrastructure has not been fully prepared, in contrast to the well-established natural gas and gasoline systems. On the frontline is the guard post of hydrogen detectors, which need to be deployed on various structural surfaces and environmental conditions. Conventional hydrogen detectors are usually bulky and environmentally sensitive, limiting their flexible and conformal deployment to various locations, such as pipelines and valves. Herein, we demonstrate the successful synthesis of a palladium-modified epitaxial metal-organic framework (MOF) on single-layer graphene to fabricate a heterostructure material (Epi-MOF-Pd). Device based on the heterostructure demonstrates high sensitivity toward low- concentration H (155% resistance response to 1% H within 12 s, a theoretical detection limit of 3 ppm). The 25 nm epitaxial MOF acquires electrons from the Pd nanoparticles after the trace amount of H is chemically adsorbed and further relays the electrons to the highly conductive graphene. The Epi-MOF-Pd is both flexible and enduring, and maintains stable detection over 10 000 bending cycles. Through photolithography, device arrays with a density of 3000 units/cm are successfully fabricated. This versatile material provides a prospective avenue for the mass production of high-performance chemical-sensitive electronics, which could significantly improve the hydrogen safety management on demand.

摘要

氢被视为迈向碳中和社会的最有前景的化石燃料清洁替代品之一。然而,与成熟的天然气和汽油系统相比,即将到来的氢能基础设施的安全管理尚未完全准备好。氢探测器处于前沿位置,需要部署在各种结构表面和环境条件下。传统的氢探测器通常体积庞大且对环境敏感,限制了它们在诸如管道和阀门等不同位置的灵活和贴合部署。在此,我们展示了在单层石墨烯上成功合成钯修饰的外延金属有机框架(MOF)以制备异质结构材料(Epi-MOF-Pd)。基于该异质结构的器件对低浓度氢气表现出高灵敏度(在12秒内对1%氢气的电阻响应为155%,理论检测限为3 ppm)。痕量氢气化学吸附后,25纳米的外延MOF从钯纳米颗粒获取电子,并进一步将电子传递给高导电性的石墨烯。Epi-MOF-Pd既灵活又耐用,在10000次弯曲循环中保持稳定检测。通过光刻技术,成功制造了密度为3000个单元/平方厘米的器件阵列。这种多功能材料为大规模生产高性能化学敏感电子器件提供了一条前景广阔的途径,有望显著改善按需进行的氢安全管理。

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