First-Principles Insights into Highly Sensitive and Reusable MoS2 Monolayers for Heavy Metal Detection

Author:

Wu Jiayin12ORCID,Li Zongbao34,Liang Tongle5,Mo Qiuyan6,Wei Jingting1,Li Bin1,Xing Xiaobo2

Affiliation:

1. Department of Engineering Technology, Guangdong Open University, Guangzhou 510091, China

2. Centre for Optical and Electromagnetic Research, South China Academy of Advanced Optoelectronics, South China Normal University, Guangzhou 510006, China

3. Ministry of Education Key Laboratory of Textile Fiber Products, School of Materials Science and Engineering, Wuhan Textile University, Wuhan 430220, China

4. School of Materials and Chemistry Engineering, Tongren University, Tongren 554300, China

5. School of Artificial Intelligence, Guangdong Vocational College of Post and Telecom, Guangzhou 510630, China

6. Big Data Engineering College, Kaili University, Kaili 556011, China

Abstract

This study explores the potential of MoS2 monolayers as heavy metal sensors for As, Cd, Hg, and Pb using density functional theory (DFT) and Non-Equilibrium Green’s Function (NEGF) simulations. Our findings reveal that As and Pb adsorption significantly alters the surface structure and electronic properties of MoS2, introducing impurity levels and reducing the band gap. Conversely, Cd and Hg exhibit weaker interactions with the MoS2 surface. The MoS2 monolayer sensors demonstrate exceptional sensitivity for all four target heavy metals, with values reaching 126,452.28% for As, 1862.67% for Cd, 427.71% for Hg, and 83,438.90% for Pb. Additionally, the sensors demonstrate selectivity for As and Pb through distinct response peaks at specific bias voltages. As and Pb adsorption also induces magnetism in the MoS2 system, potentially enabling magnetic sensing applications. The MoS2 monolayer’s moderate adsorption energy facilitates rapid sensor recovery at room temperature for As, Hg, and Cd. Notably, Pb recovery time can be significantly reduced at elevated temperatures, highlighting the reusability of the sensor. These results underscore the potential of MoS2 monolayers as highly sensitive, selective, and regenerable sensors for real-time heavy metal detection.

Funder

Foundation Research Project of Kaili University

National Natural Science Foundation of China

Key Research Platform and Research Project of General Colleges and Universities in Guangdong Province

2019 Annual School-level Research Project of Guangdong Open University

Publisher

MDPI AG

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