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Department of Energy Science and Engineering
Energy Conversion Materials Engineering Laboratory
1. Journal Articles
Tunable Phase-Engineered Polyhydroxybutyrate Fibrous Mat: An Energy Autonomous, Temperature-Responsive Platform for Wearable Application
Sharma, Kusum
;
Alluri, Nagamalleswara Rao
;
Prasanna, Asokan Poorani Sathya
;
Perumalsamy, Muthukumar
;
Saj, Anandhan Ayyappan
;
Ryu, Yeonkyeong
;
Lee, Ju-Hyuck
;
Park, Kwi-Il
;
Kim, Sang-Jae
Department of Energy Science and Engineering
Energy Conversion Materials Engineering Laboratory
1. Journal Articles
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Title
Tunable Phase-Engineered Polyhydroxybutyrate Fibrous Mat: An Energy Autonomous, Temperature-Responsive Platform for Wearable Application
Issued Date
2025-10
Citation
Advanced Fiber Materials, v.7, no.5, pp.1446 - 1461
Type
Article
Author Keywords
Electrospinning
;
Polyhydroxybutyrate
;
Self-powered sensor
;
Thermistor
;
Triboelectric nanogenerator
ISSN
2524-7921
Abstract
Biodegradable and biocompatible organic polymers play a pivotal role in designing the next generation of wearable smart electronics, reducing electronic waste and carbon emissions while promoting a toxin-free environment. Herein, an electrospun fibrous polyhydroxybutyrate (PHB) organic mat-based, energy-autonomous, skin-adaptable temperature sensor is developed, eliminating the need for additional storage or circuit components. The electrospun PHB mat exhibits an enhanced β-crystalline phase with a β/α phase ratio of 3.96 using 1,1,1,3,3,3-hexafluoro-2-propanol as a solvent. Solvent and film processing techniques were tailored to obtain high-quality PHB films with the desired thickness, flexibility, and phase conversion. The PHB mat-based temperature sensor (PHB–TS) exhibits a negative temperature coefficient of resistance, with a sensitivity of − 2.94%/°C and a thermistor constant of 4676K, outperforming pure metals and carbon-based sensors. A triboelectric nanogenerator (TENG) based on the enhanced β-phase PHB mat was fabricated, delivering an output of 156V, 0.43 µA, and a power density of 1.71 mW/m2. The energy-autonomous PHB–TS was attached to the index finger to monitor temperature changes upon contact with hot and cold surfaces, demonstrating good reliability and endurance. © Donghua University, Shanghai, China 2025.
URI
https://scholar.dgist.ac.kr/handle/20.500.11750/58370
DOI
10.1007/s42765-025-00555-4
Publisher
Springer Nature
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