共查询到20条相似文献,搜索用时 15 毫秒
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Nanogenerators: Self‐Powered Cardiac Pacemaker Enabled by Flexible Single Crystalline PMN‐PT Piezoelectric Energy Harvester (Adv. Mater. 28/2014) 下载免费PDF全文
Geon‐Tae Hwang Hyewon Park Jeong‐Ho Lee SeKwon Oh Kwi‐Il Park Myunghwan Byun Hyelim Park Gun Ahn Chang Kyu Jeong Kwangsoo No HyukSang Kwon Sang‐Goo Lee Boyoung Joung Keon Jae Lee 《Advanced materials (Deerfield Beach, Fla.)》2014,26(28):4754-4754
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Ultrahigh‐Performance Self‐Powered Flexible Double‐Twisted Fibrous Broadband Perovskite Photodetector 下载免费PDF全文
Haoxuan Sun Wei Tian Fengren Cao Jie Xiong Liang Li 《Advanced materials (Deerfield Beach, Fla.)》2018,30(21)
Self‐powered flexible photodetectors without an external power source can meet the demands of next‐generation portable and wearable nanodevices; however, the performance is far from satisfactory becuase of the limited match of flexible substrates and light‐sensitive materials with proper energy levels. Herein, a novel self‐powered flexible fiber‐shaped photodetector based on double‐twisted perovskite–TiO2–carbon fiber and CuO–Cu2O–Cu wire is designed and fabricated. The device shows an ultrahigh detectivity of 2.15 × 1013 Jones under the illumination of 800 nm light at zero bias. CuO–Cu2O electron block bilayer extends response range of perovskite from 850 to 1050 nm and suppresses dark current down to 10?11 A. The fast response speed of less than 200 ms is nearly invariable after dozens of cycles of bending at the extremely 90 bending angle, demonstrating excellent flexibility and bending stability. These parameters are comparable and even better than reported flexible and even rigid photodetectors. The present results suggest a promising strategy to design photodetectors with integrated function of self‐power, flexibility, and broadband response. 相似文献
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Zhirong Liu Jinhui Nie Bin Miao Jiadong Li Yuanbo Cui Shu Wang Xiaodi Zhang Gengrui Zhao Yongbo Deng Yihui Wu Zhou Li Linlin Li Zhong Lin Wang 《Advanced materials (Deerfield Beach, Fla.)》2019,31(12)
Nondestructive, high‐efficiency, and on‐demand intracellular drug/biomacromolecule delivery for therapeutic purposes remains a great challenge. Herein, a biomechanical‐energy‐powered triboelectric nanogenerator (TENG)‐driven electroporation system is developed for intracellular drug delivery with high efficiency and minimal cell damage in vitro and in vivo. In the integrated system, a self‐powered TENG as a stable voltage pulse source triggers the increase of plasma membrane potential and membrane permeability. Cooperatively, the silicon nanoneedle‐array electrode minimizes cellular damage during electroporation via enhancing the localized electrical field at the nanoneedle–cell interface and also decreases plasma membrane fluidity for the enhancement of molecular influx. The integrated system achieves efficient delivery of exogenous materials (small molecules, macromolecules, and siRNA) into different types of cells, including hard‐to‐transfect primary cells, with delivery efficiency up to 90% and cell viability over 94%. Through simple finger friction or hand slapping of the wearable TENGs, it successfully realizes a transdermal biomolecule delivery with an over threefold depth enhancement in mice. This integrated and self‐powered system for active electroporation drug delivery shows great prospect for self‐tuning drug delivery and wearable medicine. 相似文献
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High‐Performance Piezoelectric Nanogenerators with Imprinted P(VDF‐TrFE)/BaTiO3 Nanocomposite Micropillars for Self‐Powered Flexible Sensors 下载免费PDF全文
Xiaoliang Chen Xiangming Li Jinyou Shao Ningli An Hongmiao Tian Chao Wang Tianyi Han Li Wang Bingheng Lu 《Small (Weinheim an der Bergstrasse, Germany)》2017,13(23)
Piezoelectric nanogenerators with large output, high sensitivity, and good flexibility have attracted extensive interest in wearable electronics and personal healthcare. In this paper, the authors propose a high‐performance flexible piezoelectric nanogenerator based on piezoelectrically enhanced nanocomposite micropillar array of polyvinylidene fluoride‐trifluoroethylene (P(VDF‐TrFE))/barium titanate (BaTiO3) for energy harvesting and highly sensitive self‐powered sensing. By a reliable and scalable nanoimprinting process, the piezoelectrically enhanced vertically aligned P(VDF‐TrFE)/BaTiO3 nanocomposite micropillar arrays are fabricated. The piezoelectric device exhibits enhanced voltage of 13.2 V and a current density of 0.33 µA cm?2, which an enhancement by a factor of 7.3 relatives to the pristine P(VDF‐TrFE) bulk film. The mechanisms of high performance are mainly attributed to the enhanced piezoelectricity of the P(VDF‐TrFE)/BaTiO3 nanocomposite materials and the improved mechanical flexibility of the micropillar array. Under mechanical impact, stable electricity is stably generated from the nanogenerator and used to drive various electronic devices to work continuously, implying its significance in the field of consumer electronic devices. Furthermore, it can be applied as self‐powered flexible sensor work in a noncontact mode for detecting air pressure and wearable sensors for detecting some human vital signs including different modes of breath and heartbeat pulse, which shows its potential applications in flexible electronics and medical sciences. 相似文献
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Self‐Powered Real‐Time Arterial Pulse Monitoring Using Ultrathin Epidermal Piezoelectric Sensors 下载免费PDF全文
Dae Yong Park Daniel J. Joe Dong Hyun Kim Hyewon Park Jae Hyun Han Chang Kyu Jeong Hyelim Park Jung Gyu Park Boyoung Joung Keon Jae Lee 《Advanced materials (Deerfield Beach, Fla.)》2017,29(37)
Continuous monitoring of an arterial pulse using a pressure sensor attached on the epidermis is an important technology for detecting the early onset of cardiovascular disease and assessing personal health status. Conventional pulse sensors have the capability of detecting human biosignals, but have significant drawbacks of power consumption issues that limit sustainable operation of wearable medical devices. Here, a self‐powered piezoelectric pulse sensor is demonstrated to enable in vivo measurement of radial/carotid pulse signals in near‐surface arteries. The inorganic piezoelectric sensor on an ultrathin plastic achieves conformal contact with the complex texture of the rugged skin, which allows to respond to the tiny pulse changes arising on the surface of epidermis. Experimental studies provide characteristics of the sensor with a sensitivity (≈0.018 kPa?1), response time (≈60 ms), and good mechanical stability. Wireless transmission of detected arterial pressure signals to a smart phone demonstrates the possibility of self‐powered and real‐time pulse monitoring system. 相似文献
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Nanogenerators: Highly‐Efficient,Flexible Piezoelectric PZT Thin Film Nanogenerator on Plastic Substrates (Adv. Mater. 16/2014) 下载免费PDF全文
Kwi‐Il Park Jung Hwan Son Geon‐Tae Hwang Chang Kyu Jeong Jungho Ryu Min Koo Insung Choi Seung Hyun Lee Myunghwan Byun Zhong Lin Wang Keon Jae Lee 《Advanced materials (Deerfield Beach, Fla.)》2014,26(16):2450-2450
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Ruiyuan Liu Xiao Kuang Jianan Deng Yi‐Cheng Wang Aurelia C. Wang Wenbo Ding Ying‐Chih Lai Jun Chen Peihong Wang Zhiqun Lin H. Jerry Qi Baoquan Sun Zhong Lin Wang 《Advanced materials (Deerfield Beach, Fla.)》2018,30(8)
Growing demand in portable electronics raises a requirement to electronic devices being stretchable, deformable, and durable, for which functional polymers are ideal choices of materials. Here, the first transformable smart energy harvester and self‐powered mechanosensation sensor using shape memory polymers is demonstrated. The device is based on the mechanism of a flexible triboelectric nanogenerator using the thermally triggered shape transformation of organic materials for effectively harvesting mechanical energy. This work paves a new direction for functional polymers, especially in the field of mechanosensation for potential applications in areas such as soft robotics, biomedical devices, and wearable electronics. 相似文献
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Nanogenerators: High‐Performance Piezoelectric Nanogenerators with Imprinted P(VDF‐TrFE)/BaTiO3 Nanocomposite Micropillars for Self‐Powered Flexible Sensors (Small 23/2017) 下载免费PDF全文
Xiaoliang Chen Xiangming Li Jinyou Shao Ningli An Hongmiao Tian Chao Wang Tianyi Han Li Wang Bingheng Lu 《Small (Weinheim an der Bergstrasse, Germany)》2017,13(23)
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A Self‐Powered and Flexible Organometallic Halide Perovskite Photodetector with Very High Detectivity 下载免费PDF全文
Siu‐Fung Leung Kang‐Ting Ho Po‐Kai Kung Vincent K. S. Hsiao Husam N. Alshareef Zhong Lin Wang Jr‐Hau He 《Advanced materials (Deerfield Beach, Fla.)》2018,30(8)
Flexible and self‐powered photodetectors (PDs) are highly desirable for applications in image sensing, smart building, and optical communications. In this paper, a self‐powered and flexible PD based on the methylammonium lead iodide (CH3NH3PBI3) perovskite is demonstrated. Such a self‐powered PD can operate even with irregular motion such as human finger tapping, which enables it to work without a bulky external power source. In addition, with high‐quality CH3NH3PBI3 perovskite thin film fabricated with solvent engineering, the PD exhibits an impressive detectivity of 1.22 × 1013 Jones. In the self‐powered voltage detection mode, it achieves a large responsivity of up to 79.4 V mW?1 cm?2 and a voltage response of up to ≈90%. Moreover, as the PD is made of flexible and transparent polymer films, it can operate under bending and functions at 360 ° of illumination. As a result, the self‐powered, flexible, 360 ° omnidirectional perovskite PD, featuring high detectivity and responsivity along with real‐world sensing capability, suggests a new direction for next‐generation optical communications, sensing, and imaging applications. 相似文献
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Piezoelectric Sensors: Self‐Powered Real‐Time Arterial Pulse Monitoring Using Ultrathin Epidermal Piezoelectric Sensors (Adv. Mater. 37/2017) 下载免费PDF全文
Dae Yong Park Daniel J. Joe Dong Hyun Kim Hyewon Park Jae Hyun Han Chang Kyu Jeong Hyelim Park Jung Gyu Park Boyoung Joung Keon Jae Lee 《Advanced materials (Deerfield Beach, Fla.)》2017,29(37)
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A Flexible,Stretchable and Shape‐Adaptive Approach for Versatile Energy Conversion and Self‐Powered Biomedical Monitoring 下载免费PDF全文
Po‐Kang Yang Long Lin Fang Yi Xiuhan Li Ken C. Pradel Yunlong Zi Chih‐I Wu Jr‐Hau He Yue Zhang Zhong Lin Wang 《Advanced materials (Deerfield Beach, Fla.)》2015,27(25):3817-3824
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Xuelian Li Jingwen Zhou Junxiang Zhang Matthew Li Xuanxuan Bi Tongchao Liu Tao He Jianli Cheng Fan Zhang Yongpeng Li Xiaowei Mu Jun Lu Bin Wang 《Advanced materials (Deerfield Beach, Fla.)》2019,31(39)
The Li–CO2 battery is a promising energy storage device for wearable electronics due to its long discharge plateau, high energy density, and environmental friendliness. However, its utilization is largely hindered by poor cyclability and mechanical rigidity due to the lack of a flexible and durable catalyst electrode. Herein, flexible fiber‐shaped Li–CO2 batteries with ultralong cycle‐life, high rate capability, and large specific capacity are fabricated, employing bamboo‐like N‐doped carbon nanotube fiber (B‐NCNT) as flexible, durable metal‐free catalysts for both CO2 reduction and evolution reactions. Benefiting from high N‐doping with abundant pyridinic groups, rich defects, and active sites of the periodic bamboo‐like nodes, the fabricated Li–CO2 battery shows outstanding electrochemical performance with high full‐discharge capacity of 23 328 mAh g?1, high rate capability with a low potential gap up to 1.96 V at a current density of 1000 mA g?1, stability over 360 cycles, and good flexibility. Meanwhile, the bifunctional B‐NCNT is used as the counter electrode for a fiber‐shaped dye‐sensitized solar cell to fabricate a self‐powered fiber‐shaped Li–CO2 battery with overall photochemical–electric energy conversion efficiency of up to 4.6%. Along with a stable voltage output, this design demonstrates great adaptability and application potentiality in wearable electronics with a breath monitor as an example. 相似文献
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Actively Perceiving and Responsive Soft Robots Enabled by Self‐Powered,Highly Extensible,and Highly Sensitive Triboelectric Proximity‐ and Pressure‐Sensing Skins 下载免费PDF全文
Ying‐Chih Lai Jianan Deng Ruiyuan Liu Yung‐Chi Hsiao Steven L. Zhang Wenbo Peng Hsing‐Mei Wu Xingfu Wang Zhong Lin Wang 《Advanced materials (Deerfield Beach, Fla.)》2018,30(28)
Robots that can move, feel, and respond like organisms will bring revolutionary impact to today's technologies. Soft robots with organism‐like adaptive bodies have shown great potential in vast robot–human and robot–environment applications. Developing skin‐like sensory devices allows them to naturally sense and interact with environment. Also, it would be better if the capabilities to feel can be active, like real skin. However, challenges in the complicated structures, incompatible moduli, poor stretchability and sensitivity, large driving voltage, and power dissipation hinder applicability of conventional technologies. Here, various actively perceivable and responsive soft robots are enabled by self‐powered active triboelectric robotic skins (tribo‐skins) that simultaneously possess excellent stretchability and excellent sensitivity in the low‐pressure regime. The tribo‐skins can actively sense proximity, contact, and pressure to external stimuli via self‐generating electricity. The driving energy comes from a natural triboelectrification effect involving the cooperation of contact electrification and electrostatic induction. The perfect integration of the tribo‐skins and soft actuators enables soft robots to perform various actively sensing and interactive tasks including actively perceiving their muscle motions, working states, textile's dampness, and even subtle human physiological signals. Moreover, the self‐generating signals can drive optoelectronic devices for visual communication and be processed for diverse sophisticated uses. 相似文献
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Self‐Powered Si/CdS Flexible Photodetector with Broadband Response from 325 to 1550 nm Based on Pyro‐phototronic Effect: An Approach for Photosensing below Bandgap Energy 下载免费PDF全文
Yejing Dai Xingfu Wang Wenbo Peng Cheng Xu Changsheng Wu Kai Dong Ruiyuan Liu Zhong Lin Wang 《Advanced materials (Deerfield Beach, Fla.)》2018,30(9)
Cadmium sulfide (CdS) has received widespread attention as the building block of optoelectronic devices due to its extraordinary optoelectronic properties, low work function, and excellent thermal and chemical stability. Here, a self‐powered flexible photodetector (PD) based on p‐Si/n‐CdS nanowires heterostructure is fabricated. By introducing the pyro‐phototronic effect derived from wurtzite structured CdS, the self‐powered PD shows a broadband response range, even beyond the bandgap limitation, from UV (325 nm) to near infrared (1550 nm) under zero bias with fast response speed. The light‐induced pyroelectric potential is utilized to modulate the optoelectronic processes and thus improve the photoresponse performance. Lasers with different wavelengths have different effects on the self‐powered PDs and corresponding working mechanisms are carefully investigated. Upon 325 nm laser illumination, the rise time and fall time of the self‐powered PD are 245 and 277 µs, respectively, which are faster than those of most previously reported CdS‐based nanostructure PDs. Meanwhile, the photoresponsivity R and specific detectivity D* regarding to the relative peak‐to‐peak current are both enhanced by 67.8 times, compared with those only based on the photovoltaic effect‐induced photocurrent. The self‐powered flexible PD with fast speed, stable, and broadband response is expected to have extensive applications in various environments. 相似文献