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HZ
Verified CAS / Academic Author2 Decoded Studies

Prof. HAI Zhenyin

Science China Materials

Research Publications & English Decoded Briefs

Showing 2 publications
SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3355-0

Enhanced ion conductivity detection utilizing superhydrophilic cauliflower-like Pt black electrodes prepared via ultrasonic electrodeposition

Dense, non-porous pure platinum electrodes in conductivity sensors suffer from bubble accumulation and surface contamination, limiting sensitivity and stability for precise marine ion detection. This study introduces a combined ultrasonic and pulse electrodeposition technique to fabricate a cauliflower-like platinum black (CF-Pt-black) layer on bare platinum substrates. The resulting electrode exhibits superhydrophilicity with a contact angle of 34.52°, a 0.7-fold reduction in impedance, and a 3.54-fold increase in charge storage capacity compared to bare Pt. Mechanical and electrochemical stability are excellent. When integrated into marine conductivity sensors, the Pt black-modified electrodes improve accuracy from 0.0025 to 0.0012 mS/cm and reduce response time by 160 s. These enhancements stem from the increased surface area and active sites provided by the porous, cauliflower-like morphology, which facilitates electrolyte adsorption and ion transfer while minimizing contaminant adhesion. The findings position CF-Pt-black as a superior candidate for high-precision ion detection, biosensing, and neural recording applications.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3481-5

Highly sensitive flexible high-temperature sensor based on ITO/In2O3 for underwater hot spring monitoring

Underwater hot spring monitoring demands sensors that withstand temperatures exceeding 200 °C, rapid thermal fluctuations, and corrosive seawater while maintaining flexibility for deployment on irregular rock surfaces. This study presents a flexible high-temperature sensor utilizing conductive indium tin oxide (ITO) and sensitive In2O3 as sensing layers, deposited on polyimide and encapsulated with PET. Simulation and experimental results demonstrate a sensitivity of 179.6 μV/°C during rapid cooling from various temperatures to 25 °C without applied pressure, with a maximum output variation of 5.76% under 20 MPa. The serpentine electrode structure reduces internal stress, enabling stable output after 10,000 bending cycles. The sensor operates stably from 30 to 300 °C in air, water, seawater, and silicone oil, achieving an output voltage of 41.91 mV and sensitivity of 175.21 μV/°C near 300 °C in silicone oil. In seawater, continuous operation for 20 h and immersion for 48 h resulted in an average output variation of only 1.94%, confirming corrosion resistance and long-term stability. These metrics address the limitations of rigid thermocouples and low-temperature flexible sensors, offering a viable solution for in situ temperature monitoring in extreme underwater thermal environments.