Category Ranking

98%

Total Visits

921

Avg Visit Duration

2 minutes

Citations

20

Article Abstract

We report a new type of self-powered gas sensors based on the combination of a colorimetric film with hierarchical micro/nanostructures and organic photovoltaic cells. The transmittance of the colorimetric film with micro/nanostructures coated with ,,','-tetramethyl--phenylenediamine (TMPD) changes by reacting with NO gas, and it is measured as a current output of the photovoltaic cell. For this purpose, materials for the organic photovoltaic cells were carefully chosen to match the working wavelength of the TMPD. Micropost arrays and nanowires increase the surface area for the gas reaction and thus improve the transmittance changes by NO gas (6.7% change for the plain film vs 27.7% change for the film with hierarchical micro/nanostructures to 20 ppm of NO). Accordingly, the colorimetric device with the hierarchical structures showed a response of Δ/ = 0.27-20 ppm of NO, which is a 71% improvement compared to that of the plain sensing film. Furthermore, it showed a high selectivity against other gases such as HS and CO with almost negligible responses. Since the current output change of the photovoltaic cell is utilized as a sensor signal, no extra electrical power is required for the operation of gas sensors. We also integrated the sensor device with an electrical module and demonstrated a self-powered gas alarm system.

Download full-text PDF

Source
http://dx.doi.org/10.1021/acsami.0c08128DOI Listing

Publication Analysis

Top Keywords

self-powered gas
12
photovoltaic cell
12
colorimetric film
12
film hierarchical
12
hierarchical micro/nanostructures
12
gas sensors
8
organic photovoltaic
8
photovoltaic cells
8
current output
8
film
6

Similar Publications

The development of flexible gas sensors is of growing interest in wearable electronics. However, developing a gas sensor with low operating temperature, high sensitivity, and rapid response remains a huge challenge. Herein, we first develop a polyacrylamide-sodium acrylate-sodium citrate (PAM-Na-SC) hydrogel electrolyte, and design a hydrogel-based nitrogen dioxide (NO) gas sensor enabled by zinc-air batteries (ZABs).

View Article and Find Full Text PDF

Enhancing the Output Performance of Tubular Gas-Liquid Mixing Triboelectric Nanogenerator by Bulk Effect.

Adv Sci (Weinh)

August 2025

State Key Laboratory of Intelligent Manufacturing Equipment and Technology, Huazhong University of Science and Technology, Wuhan, Hubei, 430074, P. R. China.

Gas-liquid two-phase flow-based triboelectric nanogenerators (GL-TENGs) have gained widespread attention due to their ability to convert the kinetic energy of complex flowing fluids into electrical power, but limitation such as relatively low output power density imposed by interfacial effects severely restrict their output performance. Here, a novel tubular bulk effect gas-liquid mixing triboelectric nanogenerator (TBE-GL-TENG) is designed to significantly enhance the output performance of GL-TENGs. The instantaneous output voltage, output current, and transferred charge of 1530 V, 112 µA, and 0.

View Article and Find Full Text PDF

Portable detection methods for marine micro-nano-plastics.

Analyst

September 2025

State Key Laboratory of Geomicrobiology and Environmental Changes, Faculty of Materials Science and Chemistry, China University of Geosciences, Wuhan 430074, China.

Every year, millions of tons of plastic waste enter the ocean, gradually breaking into micro-nano-plastics, threatening the ecosystem and human health. The detection of marine micro-nano-plastics is an important link in assessing ecological risks and guiding the implementation of governance. The traditional detection technologies rely on complex equipment and pretreatment, making it difficult to achieve rapid and on-site detection of micro-nano-plastics in seawater environments.

View Article and Find Full Text PDF

In this study, we investigate the performance of an Indium tin oxide (ITO)-graphene heterojunction photoreactor, fabricated using the RF-sputtering method. The ITO thin film, with a thickness of 23.4 nm and a grain size of 12.

View Article and Find Full Text PDF

Portable or miniaturized gadgets have seen rapid development in recent years, yet their power supply remains a major obstacle, often relying on external sources. Herein, we present a portable self-powered device for sensing the NO gas. This concept integrates a perovskite photovoltaic cell (8.

View Article and Find Full Text PDF