Janus and Amphiphilic MoS2 2D Sheets for Surface‐Directed Orientational Assemblies toward Ex Vivo Dual Substrate Release

Author:

Wang Jianing1,Li Shuqi2,Yang Lin3,Kwan Chak‐Shing14,Xie Chengyi1,Cheung Kwan Yin1,Sun Raymond Wai‐Yin5,Chan Albert S. C.5,Huang Zhifeng3,Cai Zongwei1,Zeng Tao12,Leung Ken Cham‐Fai1ORCID

Affiliation:

1. Department of Chemistry and State Key Laboratory of Environmental and Biological Analysis Hong Kong Baptist University Kowloon Tong Kowloon Hong Kong SAR P. R. China

2. College of Environment Zhejiang University of Technology 18 Chaowang Road Hangzhou Zhejiang 310014 P. R. China

3. Department of Chemistry The Chinese University of Hong Kong Shatin, New Territories Hong Kong SAR P. R. China

4. Department of Chemistry Great Bay University and Great Bay Institute for Advanced Study Dongguan 523000 P. R. China

5. Guangzhou Lee & Man Technology Company Limited 8 Huanshi Avenue, Nansha Guangzhou 511458 P. R. China

Abstract

AbstractThe two‐dimensional (2‐D) Janus and amphiphilic molybdenum disulfide (MoS2) nanosheet with opposite optical activities on each side (amphichiral) is synthesized by modifying sandwich‐like bulk MoS2 with tannic acid and cholesterol through biphasic emulsion method. This new type of amphichiral Janus MoS2 nanosheet consists of a hydrophilic and positive optical activity tannic acid side as well as a hydrophobic and negative optical activity cholesterol side thereby characterized by circular dichroism. Surface‐directed orientational differentiation assemblies are performed for the as‐synthesized 2D material and are characterized by contact angle, infrared spectroscopy, X‐ray photoelectron, and circular dichroism spectroscopies. The amphiphilic nature of the materials is demonstrated by the pre‐organization of the nanosheets on either hydrophobic or hydrophilic surfaces, providing unprecedented properties of circular dichroism signal enhancement and wettability. Selective detachment of the surface organic groups (cholesterol and tannic acid fragments) is realized by matrix‐assisted laser desorption/ionisation ‐ time‐of‐flight (MALDI‐TOF) mass spectrometry, and the dual substrate release in tissue is detected by ex vivo mass spectrometry imaging.

Funder

Hong Kong Baptist University

Publisher

Wiley

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