2D/0D Heterojunction Fluorescent Probe with Schottky Barrier Based on Ti3C2TX MXene Loaded Graphene Quantum Dots for Detection of H2S During Food Spoilage

Author:

Jia Zhixin12345,Zhang Jingbin67,Ji Zengtao1345,Zhang Jiaran8,Yang Xinting12345,Shi Ce12345ORCID,Sun Xia2,Guo Yemin2

Affiliation:

1. Information Technology Research Center Beijing Academy of Agriculture and Forestry Sciences Beijing 100097 China

2. School of Agricultural Engineering and Food Science Shandong University of Technology Shandong Zibo 255049 China

3. Key Laboratory of Cold Chain Logistics Technology for Agro‐product Ministry of Agriculture and Rural Affairs Beijing 100097 China

4. National Engineering Research Center for Information Technology in Agriculture Beijing Academy of Agri‐cultural and Forestry Sciences Beijing 100097 China

5. National Engineering Laboratory for Agri‐product Quality Traceability Beijing Academy of Agricultural and Forestry Sciences Beijing 100097 China

6. Beijing Life Science Academy Beijing 102209 China

7. Department of Food Science and Agricultural Chemistry Faculty of Agricultural and Environmental Sciences McGill University Quebec H9×3V9 Canada

8. School of Electrical and Information Engineering Beijing University of Civil Engineering and Architecture Beijing 100044 China

Abstract

AbstractHydrogen sulfide (H2S) contamination of food has raised widespread public health concerns, leading to substantial medical and economic burdens. Herein, a 2D/0D heterojunction fluorescent probe (TCTG) with Schottky barriers (SB) is designed and synthesized, utilizing Ti3C2Tx MXene‐loaded graphene quantum dots (GQDs), for the detection of H2S during food spoilage. The microstructures observed through SEM and TEM reveal that uniformly sized GQDs are evenly attached to the surface of a monolayer Ti3C2Tx. The chemisorption between GQDs and Ti3C2Tx facilitates charge transfer and the formation of SB, resulting in intramolecular charge transfer (ICT) effects. With the introduction of H2S, TCTG(50%) exhibits the highest sensitivity, selectivity, and anti‐interference properties, with ultra‐fast fluorescence transient reaction (3s) and remarkably low detection limit of 41.82 ppb as well as noticeable color change. When TCTG(50%) reacted with H2S, the ICT effects are inhibited, leading to the recovery of photoinduced electron transfer (PET) and fluorescence quenching. Notably, probe TCTG is effectively utilized to detect changes in H2S levels in raw foods to assess their quality. Overall, the significance of this study is its potential to revolutionize food spoilage detection, offering a fast, reliable, and sensitive method to ensure food safety and reduce associated health and economic burdens.

Funder

National Key Research and Development Program of China

Publisher

Wiley

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