Energy Harvesting by Subcutaneous Solar Cells: A Long-Term Study on Achievable Energy Output
暂无分享,去创建一个
A. Zurbuchen | A. Haeberlin | S. Buecheler | R. Vogel | S. Buecheler | A. Haeberlin | A. Zurbuchen | B. Bissig | F. Pianezzi | J. Burger | L. Bereuter | S. Williner | F. Pianezzi | B. Bissig | J. Burger | R. Vogel | L. Bereuter | S. Williner
[1] Man-Kay Law,et al. A Single-Chip Solar Energy Harvesting IC Using Integrated Photodiodes for Biomedical Implant Applications , 2017, IEEE Transactions on Biomedical Circuits and Systems.
[2] A. N. Bashkatov,et al. Optical properties of human skin, subcutaneous and mucous tissues in the wavelength range from 400 to 2000 nm , 2005 .
[3] Jeongwoo Hwang,et al. Ultra-thin flexible GaAs photovoltaics in vertical forms printed on metal surfaces without interlayer adhesives , 2016 .
[4] Jun Q. Lu,et al. Optical properties of porcine skin dermis between 900 nm and 1500 nm , 2001, Physics in medicine and biology.
[5] Thierry Aellen,et al. Protective multilayer packaging for long-term implantable medical devices , 2014 .
[6] Y. Lee,et al. Skin thickness of Korean adults , 2002, Surgical and Radiologic Anatomy.
[7] S. Thennadil,et al. Optical properties of human skin in the near infrared wavelength range of 1000 to 2200 nm. , 2001, Journal of biomedical optics.
[8] M. Kohl,et al. Near-infrared optical properties of ex vivo human skin and subcutaneous tissues measured using the Monte Carlo inversion technique. , 1998, Physics in medicine and biology.
[9] H. Mond,et al. The 11th World Survey of Cardiac Pacing and Implantable Cardioverter‐Defibrillators: Calendar Year 2009–A World Society of Arrhythmia's Project , 2011, Pacing and clinical electrophysiology : PACE.
[10] Shiro Nishiwaki,et al. Highly efficient Cu(In,Ga)Se2 solar cells grown on flexible polymer films. , 2011, Nature materials.
[11] Christoph Huber,et al. Successful pacing using a batteryless sunlight-powered pacemaker. , 2014, Europace : European pacing, arrhythmias, and cardiac electrophysiology : journal of the working groups on cardiac pacing, arrhythmias, and cardiac cellular electrophysiology of the European Society of Cardiology.
[12] Christoph Huber,et al. The first batteryless, solar-powered cardiac pacemaker. , 2015, Heart rhythm.
[13] S. Jacques. Optical properties of biological tissues: a review , 2013, Physics in medicine and biology.
[14] Jung Hyun Han,et al. Generation of electrical power under human skin by subdermal solar cell arrays for implantable bioelectronic devices. , 2017, Biosensors & bioelectronics.
[15] Anthony J. Durkin,et al. In vivo determination of skin near-infrared optical properties using diffuse optical spectroscopy. , 2008, Journal of biomedical optics.
[16] R. Kreis,et al. Confocal laser scanning microscopy of porcine skin: implications for human wound healing studies , 1997, Journal of anatomy.
[17] D. Gruber,et al. Disease-specific longevity of impulse generators in deep brain stimulation and review of the literature , 2016, Journal of Neural Transmission.
[18] Sungho Jeong,et al. Subdermal Flexible Solar Cell Arrays for Powering Medical Electronic Implants , 2016, Advanced healthcare materials.
[19] M. Hobbs,et al. Trends in the incidence and prevalence of cardiac pacemaker insertions in an ageing population , 2014, Open Heart.