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Review

Carbon Nanotube-Based Gas Sensors: Sensing Mechanisms, Functional Interfaces, Gas-Specific Performance, and Flexible/Wearable Integration

1
Department of Nanomechatronics Engineering, College of Nanoscience & Nanotechnology, Pusan National University, 2 Busandaehak-ro, Busan 46241, Republic of Korea
2
School of Transdisciplinary Engineering, College of Engineering, Pusan National University, 2 Busandaehak-ro, Busan 46241, Republic of Korea
Sensors 2026, 26(15), 4959; https://doi.org/10.3390/s26154959
Submission received: 6 July 2026 / Revised: 29 July 2026 / Accepted: 4 August 2026 / Published: 5 August 2026
(This article belongs to the Section Chemical Sensors)

Abstract

Carbon nanotubes (CNTs) have become one of the most widely investigated nanomaterials for gas sensing because their nearly one-dimensional geometry, large surface-to-volume ratio, hollow structure, and tunable metallic or semiconducting character allow trace adsorption events to be transduced into measurable electrical signals at or near room temperature. This review summarizes CNT-based gas sensors from a system-oriented perspective, linking four interconnected topics: (i) CNT structure, synthesis, and film/device fabrication; (ii) sensing mechanisms, including charge transfer, Schottky-barrier modulation, carrier-lifetime effects, and field-enhanced ionization; (iii) functional interfaces based on noble metals, metal oxides, conducting polymers, and graphene derivatives; and (iv) gas-specific and flexible/wearable device performance. Particular attention is given to recent room-temperature and mechanically compliant CNT-film sensors fabricated on polymer, cellulose, paper, textile, and mask substrates. Rather than cataloguing only individual response values, this review compares representative devices in terms of target gas, operating condition, sensitivity, recovery strategy, selectivity, humidity tolerance, and wearable relevance. The review concludes by discussing remaining challenges in reproducibility, selectivity, humidity compensation, recovery, power consumption, and standardization, and by outlining future directions toward robust, scalable, and intelligent CNT-enabled sensing systems.
Keywords: carbon nanotubes; gas sensors; chemiresistor; functionalization; metal oxide; conducting polymer; flexible electronics; room-temperature sensing carbon nanotubes; gas sensors; chemiresistor; functionalization; metal oxide; conducting polymer; flexible electronics; room-temperature sensing

Share and Cite

MDPI and ACS Style

Jung, D. Carbon Nanotube-Based Gas Sensors: Sensing Mechanisms, Functional Interfaces, Gas-Specific Performance, and Flexible/Wearable Integration. Sensors 2026, 26, 4959. https://doi.org/10.3390/s26154959

AMA Style

Jung D. Carbon Nanotube-Based Gas Sensors: Sensing Mechanisms, Functional Interfaces, Gas-Specific Performance, and Flexible/Wearable Integration. Sensors. 2026; 26(15):4959. https://doi.org/10.3390/s26154959

Chicago/Turabian Style

Jung, Daewoong. 2026. "Carbon Nanotube-Based Gas Sensors: Sensing Mechanisms, Functional Interfaces, Gas-Specific Performance, and Flexible/Wearable Integration" Sensors 26, no. 15: 4959. https://doi.org/10.3390/s26154959

APA Style

Jung, D. (2026). Carbon Nanotube-Based Gas Sensors: Sensing Mechanisms, Functional Interfaces, Gas-Specific Performance, and Flexible/Wearable Integration. Sensors, 26(15), 4959. https://doi.org/10.3390/s26154959

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