Self-powered artificial joint wear debris sensor based on triboelectric nanogenerator
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Hongyu Zhang | Chi Zhang | Tianzhao Bu | Shaohang Xu | Guoxu Liu | Yaoyao Liu | Weiwei Zhao | Yichun Xia
[1] Ha Uk Chung,et al. Wireless sensors for continuous, multimodal measurements at the skin interface with lower limb prostheses , 2020, Science Translational Medicine.
[2] C. Trautwein,et al. Disturbed gut microbiota and bile homeostasis in Giardia-infected mice contributes to metabolic dysregulation and growth impairment , 2020, Science Translational Medicine.
[3] Xiao-Dan Sun,et al. Dual directions to address the problem of aseptic loosening via electrospun PLGA @ aspirin nanofiber coatings on titanium. , 2020, Biomaterials.
[4] A. Kheddar,et al. Impact-Aware Task-Space Quadratic-Programming Control , 2020, ArXiv.
[5] Li Zheng,et al. Nestable arched triboelectric nanogenerator for large deflection biomechanical sensing and energy harvesting , 2020 .
[6] Zhong Lin Wang,et al. A chaotic pendulum triboelectric-electromagnetic hybridized nanogenerator for wave energy scavenging and self-powered wireless sensing system , 2020 .
[7] Zhong Lin Wang. On the first principle theory of nanogenerators from Maxwell's equations , 2020 .
[8] Jianbin Luo,et al. Dynamic wear sensor array based on single-electrode triboelectric nanogenerators , 2020 .
[9] Benjamin C. Johnson,et al. A wireless millimetre-scale implantable neural stimulator with ultrasonically powered bidirectional communication , 2020, Nature Biomedical Engineering.
[10] Tao Jiang,et al. Flexible and durable wood-based triboelectric nanogenerators for self-powered sensing in athletic big data analytics , 2019, Nature Communications.
[11] Aurelia Chi Wang,et al. On the origin of contact-electrification , 2019, Materials Today.
[12] Zhuo Kang,et al. Recent Advances in Triboelectric Nanogenerator‐Based Health Monitoring , 2019, Advanced Functional Materials.
[13] Anas Batou,et al. Stochastic modeling for hysteretic bit–rock interaction of a drill string under torsional vibrations , 2019, Journal of Vibration and Control.
[14] Jun Luo,et al. Non defect-stabilized thermally stable single-atom catalyst , 2019, Nature Communications.
[15] Han Wang,et al. Debris Recognition Methods in the Lubrication System with Electrostatic Sensors , 2018, Mathematical Problems in Engineering.
[16] Hengyu Guo,et al. Triboelectric Nanogenerator: A Foundation of the Energy for the New Era , 2018, Advanced Energy Materials.
[17] Guohui Li,et al. A New Hybrid Model Based on Fruit Fly Optimization Algorithm and Wavelet Neural Network and Its Application to Underwater Acoustic Signal Prediction , 2018, Mathematical Problems in Engineering.
[18] Zhong Lin Wang,et al. Reviving Vibration Energy Harvesting and Self-Powered Sensing by a Triboelectric Nanogenerator , 2017 .
[19] Karupppasamy Subburaj,et al. Evaluating the effects of material properties of artificial meniscal implant in the human knee joint using finite element analysis , 2017, Scientific Reports.
[20] Zhong Lin Wang. On Maxwell's displacement current for energy and sensors: the origin of nanogenerators , 2017 .
[21] G. Duda,et al. Influence of particulate and dissociated metal-on-metal hip endoprosthesis wear on mesenchymal stromal cells in vivo and in vitro. , 2016, Biomaterials.
[22] Tao Jiang,et al. A ball-bearing structured triboelectric nanogenerator for nondestructive damage and rotating speed measurement , 2016, Nanotechnology.
[23] M. J. Nine,et al. Wear Debris Characterization and Corresponding Biological Response: Artificial Hip and Knee Joints , 2014, Materials.
[24] Zhong Lin Wang,et al. Theoretical study of contact-mode triboelectric nanogenerators as an effective power source , 2013 .
[25] Xiaoliang Zhu,et al. High Throughput Wear Debris Detection in Lubricants Using a Resonance Frequency Division Multiplexed Sensor , 2013, Tribology Letters.
[26] Jiang Zhe,et al. Improving sensitivity of an inductive pulse sensor for detection of metallic wear debris in lubricants using parallel LC resonance method , 2013 .
[27] Eleftherios Tsiridis,et al. Molecular and immune toxicity of CoCr nanoparticles in MoM hip arthroplasty. , 2012, Trends in molecular medicine.
[28] Zhong Lin Wang,et al. Flexible triboelectric generator , 2012 .
[29] E. Ciulli,et al. Lubrication and wear modelling of artificial hip joints: A review , 2011 .
[30] A. Toro,et al. Wear of materials used for artificial joints in total hip replacements , 2008 .
[31] Jun Sun,et al. Wear monitoring of bearing steel using electrostatic and acoustic emission techniques , 2005 .
[32] J. Fisher,et al. Biological reactions to wear debris in total joint replacement , 2000, Proceedings of the Institution of Mechanical Engineers. Part H, Journal of engineering in medicine.
[33] D Dowson,et al. A full numerical analysis of hydrodynamic lubrication in artificial hip joint replacements constructed from hard materials , 1999 .
[34] A. Cittadini,et al. Y-TZP ceramics for artificial joint replacements. , 1998, Biomaterials.
[35] D. Dowson,et al. Analysis of fluid film lubrication in artificial hip joint replacements with surfaces of high elastic modulus , 1997, Proceedings of the Institution of Mechanical Engineers. Part H, Journal of engineering in medicine.
[36] M. Semlitsch,et al. Reactions of the articular capsule to wear products of artificial joint prostheses. , 1977, Journal of biomedical materials research.
[37] Zhong Lin Wang,et al. Single-electrode-based rotationary triboelectric nanogenerator and its applications as self-powered contact area and eccentric angle sensors , 2015 .
[38] J. Zhe,et al. An integrated ultrasonic–inductive pulse sensor for wear debris detection , 2012 .
[39] A. Kashi,et al. Temporomandibular joint disorders: artificial joint replacements and future research needs. , 2006, Journal of long-term effects of medical implants.
[40] C. Lohmann,et al. Metal-on-metal bearings and hypersensitivity in patients with artificial hip joints. A clinical and histomorphological study. , 2005, The Journal of bone and joint surgery. American volume.