Aligned PLLA Electrospun fibres based Biodegradable Triboelectric Nanogenerator
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[1] Pratikshkumar R. Patel,et al. A review on electrospun nanofibers for multiple biomedical applications , 2022, Polymers for Advanced Technologies.
[2] N. Yogeswaran,et al. Ultra‐Flexible Biodegradable Pressure Sensitive Field Effect Transistors for Hands‐Free Control of Robot Movements , 2022, Adv. Intell. Syst..
[3] R. Dahiya,et al. Screen-printed graphene-carbon ink based disposable humidity sensor with wireless communication , 2022, Sensors and Actuators B: Chemical.
[4] Yulia Sandamirskaya,et al. Neuro-inspired electronic skin for robots , 2022, Science Robotics.
[5] R. Dahiya,et al. Self‐Powered Active Sensing Based on Triboelectric Generators , 2022, Advanced materials.
[6] R. Dahiya,et al. Electronic Waste Reduction Through Devices and Printed Circuit Boards Designed for Circularity , 2022, IEEE Journal on Flexible Electronics.
[7] D. Mulvihill,et al. Integrated Piezo-Triboelectric Nanogenerators-Based Self-Powered Flexible Temperature and Pressure Sensor , 2023, IEEE Journal on Flexible Electronics.
[8] D. Mulvihill,et al. Ferroelectric-assisted high-performance triboelectric nanogenerators based on electrospun P(VDF-TrFE) composite nanofibers with barium titanate nanofillers , 2021, Nano Energy.
[9] Bin Hu,et al. Wireless electrical stimulation of the vagus nerves by ultrasound-responsive programmable hydrogel nanogenerators for anti-inflammatory therapy in sepsis , 2021 .
[10] Zhong Lin Wang,et al. Recent progress in blue energy harvesting for powering distributed sensors in ocean , 2021 .
[11] Sang‐Jae Kim,et al. Materials Beyond Conventional Triboelectric Series for Fabrication and Applications of Triboelectric Nanogenerators , 2021, Advanced Energy Materials.
[12] M. Brzezinska,et al. The role of microorganisms in biodegradation of chitosan/tannic acid materials. , 2021, International journal of biological macromolecules.
[13] Ravinder Dahiya,et al. Bioinspired Distributed Energy in Robotics and Enabling Technologies , 2021, Adv. Intell. Syst..
[14] Jun Chen,et al. Triboelectric Nanogenerators for Therapeutic Electrical Stimulation , 2021, Advanced materials.
[15] R. Dahiya,et al. Origin of the contact force-dependent response of triboelectric nanogenerators , 2021, Nano Energy.
[16] M. Mozafari,et al. Biodegradable magnesium‐based biomaterials: An overview of challenges and opportunities , 2021, MedComm.
[17] Ou Yang,et al. Harvesting Wind Energy by a Triboelectric Nanogenerator for an Intelligent High-Speed Train System , 2021 .
[18] R. Dahiya,et al. Biodegradable Materials for Sustainable Health Monitoring Devices , 2020, ACS applied bio materials.
[19] Ravinder Dahiya,et al. Energy Generating Electronic Skin With Intrinsic Tactile Sensing Without Touch Sensors , 2020, IEEE Transactions on Robotics.
[20] Jiangming Fu,et al. A pulse controllable voltage source based on triboelectric nanogenerator , 2020 .
[21] R. Dahiya,et al. A unified contact force-dependent model for triboelectric nanogenerators accounting for surface roughness , 2020 .
[22] Ravinder S. Dahiya,et al. Triboelectric Nanogenerator With Enhanced Performance via an Optimized Low Permittivity Substrate , 2020, IEEE Sensors Journal.
[23] Jiangming Fu,et al. Multiple‐Frequency High‐Output Triboelectric Nanogenerator Based on a Water Balloon for All‐Weather Water Wave Energy Harvesting , 2020, Advanced Energy Materials.
[24] S. Jafari,et al. Electrospinning approach for nanoencapsulation of bioactive compounds; recent advances and innovations , 2020 .
[25] Xiong Pu,et al. Boosting performances of triboelectric nanogenerators by optimizing dielectric properties and thickness of electrification layer , 2020, RSC advances.
[26] Jiangming Fu,et al. A high-output triboelectric nanogenerator based on nickel–copper bimetallic hydroxide nanowrinkles for self-powered wearable electronics , 2020 .
[27] G. Robson,et al. Microbial degradation of four biodegradable polymers in soil and compost demonstrating polycaprolactone as an ideal compostable plastic. , 2019, Waste management.
[28] Younan Xia,et al. Electrospinning and Electrospun Nanofibers: Methods, Materials, and Applications. , 2019, Chemical reviews.
[29] Xiaodi Zhang,et al. Self‐Powered Intracellular Drug Delivery by a Biomechanical Energy‐Driven Triboelectric Nanogenerator , 2019, Advanced materials.
[30] Ravinder Dahiya,et al. Energy autonomous electronic skin , 2019, npj Flexible Electronics.
[31] A. Yu,et al. Remarkably enhanced triboelectric nanogenerator based on flexible and transparent monolayer titania nanocomposite , 2018, Nano Energy.
[32] Yang Zou,et al. Fully Bioabsorbable Natural‐Materials‐Based Triboelectric Nanogenerators , 2018, Advanced materials.
[33] Shurong Dong,et al. Fully biodegradable triboelectric nanogenerators based on electrospun polylactic acid and nanostructured gelatin films , 2018 .
[34] Yang Wang,et al. Triboelectric nanogenerators as flexible power sources , 2017, npj Flexible Electronics.
[35] Junhua Zhang,et al. Detailed molecular movements during poly(L-lactic acid) cold-crystallization investigated by FTIR spectroscopy combined with two-dimensional correlation analysis , 2017 .
[36] M. Islam,et al. Chitin and Chitosan: Structure, Properties and Applications in Biomedical Engineering , 2017, Journal of Polymers and the Environment.
[37] M. Mirjalili,et al. Review for application of electrospinning and electrospun nanofibers technology in textile industry , 2016, Journal of Nanostructure in Chemistry.
[38] Giehyeon Lee,et al. Reaction of zero-valent magnesium with water: Potential applications in environmental remediation , 2013 .
[39] S. Sirisansaneeyakul,et al. Degradation behaviors of different blends of polylactic acid buried in soil , 2013 .
[40] Zhong Lin Wang,et al. Flexible triboelectric generator , 2012 .
[41] Guy César,et al. Fungal Degradation of Poly(l-lactide) in Soil and in Compost , 2012, Journal of Polymers and the Environment.
[42] Gregory C Rutledge,et al. Formation of fibers by electrospinning. , 2007, Advanced drug delivery reviews.
[43] Y. Ozaki,et al. Crystal Modifications and Thermal Behavior of Poly(l-lactic acid) Revealed by Infrared Spectroscopy , 2005 .
[44] Hofvendahl,et al. Factors affecting the fermentative lactic acid production from renewable resources(1). , 2000, Enzyme and microbial technology.
[45] Tung-Ching Lee,et al. Biodegradability of chitin- and chitosan-containing films in soil environment , 1995 .