| Literature DB >> 35075903 |
Yawen Xiao1, Chen Chen1, Yangli Wu1, Yutao Yin1, Haibo Wu1, Hongfeng Li1, Yun Fan1, Jiansheng Wu1, Sheng Li1, Xiao Huang1, Weina Zhang1, Bing Zheng1, Fengwei Huo1.
Abstract
Controlling the morphology of the metal-organic framework (MOF) for nanosheets is beneficial for understanding their crystal growth kinetics and useful for extending these MOF nanosheets to advanced applications, in particular for gas separation and device integration. However, synthesizing MOF nanosheets with uniform thickness or desirable size still remains challenging. Herein, we provide a crystal dissolution-growth strategy for fabricating dispersible porphyrin MOF nanosheets with lateral dimensions and nanometer thickness. A morphological transition (bulk crystals-nanosheets-bulk crystals) in Zn-TCPP was observed when controlling the crystal growth kinetics by adjusting the reaction parameters (temperature and acidity). These findings encouraged the synthesis of other types of nanosheets (Cu-TCPP, Zn-TCPP (Pd), and Cu-BDC nanosheets). Zn-TCPP (Pd) nanosheets were applied in field-effect transistors and exhibited photoresponse characteristics. This work demonstrates a new strategy for obtaining MOF nanosheets and casts a new light upon fabricating two-dimensional inorganic-organic hybrid materials with controlled thickness.Entities:
Keywords: 2D MOF nanosheets; crystal growth kinetics; dissolution equilibrium; field-effect transistors; reaction parameters
Year: 2022 PMID: 35075903 DOI: 10.1021/acsami.1c22781
Source DB: PubMed Journal: ACS Appl Mater Interfaces ISSN: 1944-8244 Impact factor: 9.229