Dongguk University Researchers Develop Breakthrough Material for Powering Next-Generation Smart Devices
The proposed revolutionary low-cost technology enables smart sensors and wearables to run without batteries
Additionally, the potential self-powered operation of such systems is restricted by conflicting charge transport kinetics, especially in the electron and hole transport layers (ETLs and HTLs, respectively). This limitation impacts device durability and stability and increases fabrication costs, making it indispensable to find new HTL materials such as poly(3,4-ethylenedioxythiophene), 2-(9H-carbazol-9-yl)ethyl]phosphonic acid self-assembled monolayer, MoOx, NiOx, and V2O5, beyond conventional options.
In a pioneering study, a team of researchers led by Associate Professor
The key innovation of this research is the development of 'minimalist' molecular bridge BPA that resolves a fundamental conflict in electronics by enabling a single device to operate as both an efficient indoor solar cell and a high-sensitivity light sensor.
The bifunctional devices based on the proposed material could power the next generation of smart environments by enabling self-powered Internet of Things (IoT) sensors, wearable health monitors that harvest ambient light, and large-scale interactive 'skins' on indoor surfaces that simultaneously collect energy and sense data without the need for external power sources or batteries. By enabling efficient indoor energy harvesting, this work could drastically reduce the global reliance on disposable batteries for billions of sensors, promoting long-term environmental sustainability. Furthermore, the minimalist synthesis approach significantly lowers fabrication costs, making high-performance electronics economically viable for mass deployment.
"Overall, synergy between performance and commercial practicality positions our BPA-HTL as a transformative enabler for self-powered IoT and wearable optoelectronics," concludes
Reference
Title of original paper: Bifunctionally Driven Organic Photonic Conversion Devices Facilitated by Minimalistic Synthesis-Based Interfacial Energetic Alignment
Journal: Advanced Materials
DOI: https://doi.org/10.1002/adma.202512209
About Dongguk University
Website: https://www.dongguk.edu/eng/
Contact:
Sunggeun Cho
82 2-2260-3069
[email protected]
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SOURCE Dongguk University
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