Advances in the recent application of carbon nanomaterials in triboelectric nanogenerator sensors
- PMID: 40773009
- DOI: 10.1007/s00604-025-07411-7
Advances in the recent application of carbon nanomaterials in triboelectric nanogenerator sensors
Abstract
Recent developments in wearable technology and the Internet of Things (IoT) have created an adequate basis for sensor systems that can identify a wide range of chemical or biological agents. However, the rapid advancement of these devices has exacerbated power supply issues, particularly the need for renewable and efficient energy sources. Triboelectric nanogenerators have supplied the definitive solution to the difficulty of portable self-powered gadgets. The remarkable thermal, electrical, and mechanical characteristics of carbon nanomaterials, including carbon nanotubes, graphene, carbon dots, and graphitic carbon nitride are utilized by the devices to enhance triboelectric efficiency, practicality, flexibility, and electrical output. Exceptional mechanical, electrical, and thermal capabilities are exhibited by these nanoparticles. A comprehensive analysis of current advancements in the applications of carbon nanomaterials in triboelectric nanogenerator-based sensor systems is provided in this article. The function of these nanomaterials in enhancing sensing capabilities and power supply mechanisms for the detection of chemical and biological contaminants is primarily examined in this review. The recent advanced applications of carbon nanomaterials such as carbon nanotubes, graphene, carbon dots, and graphitic carbon nitride in triboelectric nanogenerator-based sensor systems for chemical or biological detection are discussed from the perspective of the development of power supply or sensing mechanisms.
Keywords: Biological analytes; Carbon nanotube; Environmental analytes; Graphene; TENG.
© 2025. The Author(s), under exclusive licence to Springer-Verlag GmbH Austria, part of Springer Nature.
Conflict of interest statement
Ethical approval: This study does not contain any studies with human or animal subjects performed by any of the authors. Conflict of interest: The authors declare no competing interests.
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References
-
- Almagrabi AO, Al-Otaibi YD (2020) A survey of context-aware messaging-addressing for sustainable internet of things (IoT). Sustainability 12(10):4105
-
- Wang ZL (2020) Triboelectric nanogenerator (TENG)—sparking an energy and sensor revolution. Adv Energy Mater 10(17):2000137
-
- Zarejousheghani M et al (2021) Molecularly imprinted polymer-based sensors for priority pollutants. Sensors (Basel) 21(7):2406 - PubMed
-
- Pauliukaite R, Voitechovič E (2020) Multisensor systems and arrays for medical applications employing naturally-occurring compounds and materials. Sensors (Basel) 20(12):3551 - PubMed
-
- Meier J et al (2019) Hydrogen peroxide sensors for biomedical applications. Chemosensors 7(4):64