Highly Selective Ammonia Detection in NiO‐Functionalized Graphene Micropatterns for Beef Quality Monitoring

Author:

Kim Seungsoo1ORCID,Kim Yeonhoo2ORCID,Kim Jaehyun1,Kim Seung Ju1ORCID,Kim Taehoon1,Sim Jaegun13ORCID,Jun Sang Eon1ORCID,Lim Jiheon1ORCID,Eom Tae Hoon1,Lee Hyeong Seok1ORCID,Lee Gwan‐Hyoung1ORCID,Hong Byung Hee34ORCID,Oh Mi‐Hwa5ORCID,Huh Yun Suk6ORCID,Jang Ho Won17ORCID

Affiliation:

1. Department of Materials Science and Engineering Research Institute of Advanced Materials Seoul National University Seoul 08826 Republic of Korea

2. Strategic Technology Research Institute Korea Research Institute of Standards and Science Daejeon 34113 Republic of Korea

3. Graphene Research Center Advanced Institute of Convergence Technology Suwon 16229 Republic of Korea

4. Department of Chemistry Seoul National University Seoul 08826 Republic of Korea

5. National Institute of Animal Science Rural Development Administration Wanju 55365 Republic of Korea

6. Department of Biological Engineering NanoBio High‐Tech Materials Research Center Inha University Incheon 22212 Republic of Korea

7. Advanced Institute of Convergence Technology Seoul National University Suwon 16229 Republic of Korea

Abstract

AbstractGraphene has emerged as one of the most promising materials for next‐generation gas sensor platforms due to its high flexibility, transparency, and hydrophobicity. However, graphene shows inherent low selectivity in gas sensing. This has led to extensive development of noble‐metal decoration on graphene to modulate its surface chemistry for enhanced selectivity. While noble metals such as Pt, Pd, and Au have widely been employed to functionalize graphene surface, non‐noble metal decoration of graphene has remained underexplored. Here, an unprecedented room‐temperature self‐activated graphene gas sensor functionalized by NiO nanoparticles and its application to wearable devices monitoring ammonia gas in daily life are demonstrated. NiO‐functionalized graphene micropatterns show ultra‐high selectivity to ammonia with a low detection limit of 2.547 ppt. Density functional theory (DFT) calculations reveal that the strong attraction between NiO and NH3 induced by charge depletion and the vertex region of NiO accelerate the adsorption of NH3 molecules. Furthermore, a wearable graphene device demonstrates the capability to detect ammonia emissions from beef, triggering an alarm call when a specific threshold is exceeded. This work proposes the functionalization of graphene with transition metal oxides, extending beyond the conventional noble metal decoration, and the potential utilization of the graphene for wearable devices.

Publisher

Wiley

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