Xing Xiaxia, Li Zhenxu, Chen Xiaoyu, Du Lingling, Tian Yingying, Feng Dongliang, Wang Chen, Liu Guohua, Yang Dachi
Tianjin Key Laboratory of Optoelectronic Sensor and Sensing Network Technology, and Department of Electronics, College of Electronic Information and Optical Engineering, Nankai University, Tianjin 300350, China.
Department of Microelectronic Engineering, College of Electronic Information and Optical Engineering, Nankai University, Tianjin 300350, China.
ACS Appl Mater Interfaces. 2022 Apr 20;14(15):17911-17919. doi: 10.1021/acsami.1c24190. Epub 2022 Apr 6.
Hydrogen (H) as a high-energy-density carrier is of great potential in the upcoming hydrogen economy. Nevertheless, H/air mixtures are explosive at H concentrations above 4 v/v % and reliable and wide-concentration-range H sensors are thus highly desired. Here, hydrogen sensing has been developed using palladium nanoparticles of ∼11.2 nm in diameter chemically decorated on the carbon/nitrogen three-dimensional porous framework of 308 m g in specific surface area (Pd NPs@CN 3D framework). Theoretically, the Pd NPs and CN 3D framework are used to construct the Mott-Schottky heterojunctions, in which the CN 3D framework possesses a higher work function, promoting electron transfer to Pd NPs and therefore highly active dissociation of H. Beneficially, the Pd NPs@CN 3D framework exhibits a wide concentration range of 200 ppm ( ≈ 0.2% and ≈ 15 s) to 40 v/v % ( ≈ 73.8% and ≈ 9 s) H sensing at room temperature. Remarkably, the H sensor prototype built with the Pd NPs@CN 3D framework shows excellent long-term stability that maintains reliable H sensing after 142 days. Such stable hydrogen sensing provides an experimental basis for the wide-concentration-range detection of H leakage in the future hydrogen economy.
氢(H)作为一种高能量密度载体,在即将到来的氢经济中具有巨大潜力。然而,当氢气浓度高于4 v/v %时,氢气与空气的混合物具有爆炸性,因此非常需要可靠且浓度范围宽的氢气传感器。在此,利用直径约为11.2 nm的钯纳米颗粒在比表面积为308 m²/g的碳/氮三维多孔框架上进行化学修饰,开发出了氢气传感技术(Pd NPs@CN 3D框架)。理论上,钯纳米颗粒和碳氮三维框架用于构建莫特-肖特基异质结,其中碳氮三维框架具有更高的功函数,促进电子转移到钯纳米颗粒上,从而使氢气高度活跃地解离。有利的是,Pd NPs@CN 3D框架在室温下对氢气的传感浓度范围很宽,从200 ppm(≈0.2%,响应时间≈15秒)到40 v/v %(≈73.8%,响应时间≈9秒)。值得注意的是,用Pd NPs@CN 3D框架构建的氢气传感器原型显示出优异的长期稳定性,在142天后仍能保持可靠的氢气传感。这种稳定的氢气传感为未来氢经济中氢气泄漏的宽浓度范围检测提供了实验依据。