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2D Materials Decorated with Ultrathin and Porous Graphene Oxide for High Stability and Selective Surface Activity

Ji‐Soo Jang, Hong Ju Jung, Sanggyu Chong, Dong‐Ha Kim, Jihan Kim, Sang Ouk Kim, Il‐Doo Kim

2020Advanced Materials76 citationsDOI

Abstract

Abstract 2D black phosphorus (BP) and MXenes have triggered enormous research interest in catalysis, energy storage, and chemical sensing. Unfortunately, the low stability of these materials under practical operating conditions remains a critical bottleneck, particularly as they are prone to oxidization under moisture. In this work, the design and application of stable 2D heterostructures obtained from decorating BP and MXene (Ti 3 C 2 T x ) with few‐layer holey graphene oxide (FHGO) membranes are presented. In the resulting heterostructured systems, FHGO serves as a multifunctional passivation layer that shields BP or MXene from oxidative degradation, while allowing the selective diffusion of target gas molecules through its micropores and toward the underlying 2D material. Through a case study of dilute NO 2 sensing, it is demonstrated that these heterostructures show a greatly enhanced sensing performance under humid conditions, where fast sensing speed and response are consistently observed, and high stability is impressively retained upon repetitive sensing cycles for 1000 min. These results corroborate the efficacy of material decoration with porous FHGO membranes and suggest that this is a generalizable strategy for reliable high‐performance applications of 2D materials.

Topics & Concepts

Materials scienceMXenesGrapheneOxideHeterojunctionPassivationMembraneNanotechnologyPorosityLayer (electronics)Chemical engineeringOptoelectronicsComposite materialBiologyMetallurgyEngineeringGeneticsMXene and MAX Phase Materials2D Materials and ApplicationsGraphene research and applications
2D Materials Decorated with Ultrathin and Porous Graphene Oxide for High Stability and Selective Surface Activity | Litcius