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Jul 16, 2025·ACS Sustainable Chemistry & Engineering
10 cites
Seawater-Powered PEC Photodetectors Based on a Layered Metal Dichalcogenide for Marine Underwater Optical Communication

Preet Deepankumar Vyas, Devang Dhorada, Kevin Bhanderi, Akshaybhai J. Patel · 9 authors

In order to protect the ocean ecosystem, the pursuit of sustainable and self-powered photodetectors is critical for revolutionizing underwater optical communication (UOC) used for environmental hazard sensing. This step enables energy-efficient and real-time detection of marine ecosystem threats such as chemical contamination, oil spill, and eutrophication. Although layered metal dichalcogenides (LMDCs) with exceptional optoelectronic properties and chemical stability are the most suitable materials, their integration into UOC technology remains largely unexplored. To address this, the present study demonstrates and evaluates seawater-immersed photoelectrochemical photodetectors (PEC-PDs) based on SnSe<sub>2</sub>, an emerging member from the LMDC family. Direct vapor transport-grown SnSe<sub>2</sub> is well characterized in its thin-film form by X-ray diffraction, X-ray photoelectron spectroscopy, scanning electron microscopy, atomic force microscopy, Raman spectroscopy, and PL spectroscopy, followed by utilization as photoelectrodes in the PEC-PD devices. Fabricated PEC-PDs exhibit a responsivity of 505.74 ± 4.65 μA/W at zero bias and 10.34 ± 0.16 mA/W at 0.4 V bias; they outperform conventional Na<sub>2</sub>SO<sub>4</sub>-based devices by 21-fold and 82-fold, respectively. To the best of our knowledge, this is the first report presenting an SnSe<sub>2</sub>-based PEC-PD utilizing seawater electrolyte and its performance evaluation. A proof-of-concept UOC demonstration of the present study paves the way toward the next-generation green optoelectronic devices for self-sustainable marine technologies.

Open access
2 source records
Ga2O3 and related materials
Gas Sensing Nanomaterials and Sensors
2D Materials and Applications
Original source
Mar 11, 2022·Science Advances
166 cites
Disordered-nanoparticle–based etalon for ultrafast humidity-responsive colorimetric sensors and anti-counterfeiting displays

Chunghwan Jung, Soo-Jung Kim, Jaehyuck Jang, Joo Hwan Ko · 9 authors

The development of real-time and sensitive humidity sensors is in great demand from smart home automation and modern public health. We hereby proposed an ultrafast and full-color colorimetric humidity sensor that consists of chitosan hydrogel sandwiched by a disordered metal nanoparticle layer and reflecting substrate. This hydrogel-based resonator changes its resonant frequency to external humidity conditions because the chitosan hydrogels are swollen under wet state and contracted under dry state. The response time of the sensor is ~10 4 faster than that of the conventional Fabry-Pérot design. The origins of fast gas permeation are membrane pores created by gaps between the metal nanoparticles. Such instantaneous and tunable response of a new hydrogel resonator is then exploited for colorimetric sensors, anti-counterfeiting applications, and high-resolution displays.

Open access
Gas Sensing Nanomaterials and Sensors
Polydiacetylene-based materials and applications
Advanced Chemical Sensor Technologies
Original source