Lunardon Marco, Ran JiaJia, Mosconi Dario, Marega Carla, Wang Zhanhua, Xia Hesheng, Agnoli Stefano, Granozzi Gaetano
Department of Chemical Sciences, University of Padova, Via F. Marzolo 1, 35131 Padova, Italy.
State Key Laboratory of Polymer Materials Engineering, Polymer Research Institute, Sichuan University, Chengdu 610065, China.
Nanomaterials (Basel). 2020 Nov 28;10(12):2376. doi: 10.3390/nano10122376.
A peculiar 3D graphene-based architecture, i.e., partial reduced-Graphene Oxide Aerogel Microspheres (prGOAM), having a dandelion-like morphology with divergent microchannels to implement innovative electrocatalysts for the hydrogen evolution reaction (HER) is investigated in this paper. prGOAM was used as a scaffold to incorporate exfoliated transition metals dichalcogenide (TMDC) nanosheets, and the final hybrid materials have been tested for HER and photo-enhanced HER. The aim was to create a hybrid material where electronic contacts among the two pristine materials are established in a 3D architecture, which might increase the final HER activity while maintaining accessible the TMDC catalytic sites. The adopted bottom-up approach, based on combining electrospraying with freeze-casting techniques, successfully provides a route to prepare TMDC/prGOAM hybrid systems where the dandelion-like morphology is retained. Interestingly, the microspherical morphology is also maintained in the tested electrode and after the electrocatalytic experiments, as demonstrated by scanning electron microscopy images. Comparing the HER activity of the TMDC/prGOAM hybrid systems with that of TMDC/partially reduced-Graphene Oxide (prGO) and TMDC/Vulcan was evidenced in the role of the divergent microchannels present in the 3D architecture. HER photoelectron catalytic (PEC) tests have been carried out and demonstrated an interesting increase in HER performance.
本文研究了一种特殊的基于3D石墨烯的结构,即部分还原氧化石墨烯气凝胶微球(prGOAM),其具有类似蒲公英的形态,带有发散的微通道,用于实现用于析氢反应(HER)的创新型电催化剂。prGOAM被用作支架来掺入剥离的过渡金属二硫属化物(TMDC)纳米片,并且对最终的混合材料进行了HER和光增强HER测试。目的是创建一种混合材料,其中两种原始材料之间的电子接触在3D结构中建立,这可能会提高最终的HER活性,同时保持TMDC催化位点可及。所采用的自下而上的方法,基于将电喷雾与冷冻铸造技术相结合,成功地提供了一种制备保留蒲公英状形态的TMDC/prGOAM混合体系的途径。有趣的是,如扫描电子显微镜图像所示,在测试电极中以及电催化实验后,微球形形态也得以保持。将TMDC/prGOAM混合体系的HER活性与TMDC/部分还原氧化石墨烯(prGO)和TMDC/炭黑的HER活性进行比较,证明了3D结构中存在的发散微通道的作用。已经进行了HER光电子催化(PEC)测试,并证明HER性能有了有趣的提高。