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Updated: Sep 4, 2026

Assembly and Characterization of Biomolecular Memristors Consisting of Ion Channel-doped Lipid Membranes
Published on: March 9, 2019
Imitating human-like learning and text encoding utilizing flexible and sustainable synaptic transistors composed of
Somnath Bhattacharjee1, Shree Prakash Tiwari1
1Flexible Large Area Microelectronics (FLAME) Research Group, Department of Electronics Engineering, Indian Institute of Technology Jodhpur, Rajasthan 342037, India. sptiwari@iitj.ac.in.
Abstract:
Recycling has become the best solution for addressing ever-rising electronic waste (e-waste) and sustainable waste reduction to protect human and ecological health. The use of recyclable and nature-originated materials can provide an ecofriendly route towards the development of smart electronics for data-intensive requirements. In this work, sustainable synaptic transistors based on recyclable, organic, and natural materials are demonstrated for sustainable neuromorphic systems, especially for excellent human-like learning and text encoding. The fabricated transistors exhibited p-channel characteristics alongside remarkable non-volatile memory behavior. Moreover, in addition to demonstrating superior operational stability, these devices can replicate spike timing-dependent, voltage-dependent, and number-dependent plasticity and pulse-paired facilitation. These devices maintained their ability to mimic even after undergoing extensive flexibility assessments. These transistors can encode text as Morse code while operating at a remarkably low energy per synaptic event of 0.035 fJ. Finally, these devices achieved an accuracy of 81.2% when the extracted weights were applied in a simple three-layer ANN architecture designed for recognizing everyday fashion apparel. The recognition accuracy remained unaltered even after the devices were bent multiple times at various radii. These exciting results suggest a potential new direction for the development of hardware-based sustainable and flexible neuromorphic systems.
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