A. Kim, M. Ochoa, R. Rahimi, B. Ziaie, New and emerging energy sources for implantable wireless microdevices. IEEE Access 3, 89-98 (2015)
X. Teng, Y. Zhang, C.C.Y. Poon, P. Bonato, Wearable medical systems for p-health. IEEE Rev. Biomed. Eng. 1, 62-74 (2008)
Z. Zhu, Y. Liang, A 0.6-V 38-nW 9.4-ENOB 20-kS/s SAR ADC in 0.18-μmCMOS for medical implant devices. IEEE Trans. Circuits Syst. I: Regul. Pap. 62(9), 2167-2176 (2015)
A.F. Yeknami, A. Alvandpour, A 0.5-V 250-nW 65-dB SNDR passive Δ Σ modulator for medical implant devices, in 2013 IEEE International Symposium on Circuits and Systems (ISCAS2013), Beijing (2013), pp. 2010-2013
H. Tang, Z.C. Sun, K.W.R. Chew, L. Siek, A 5.8 nW 9.1-ENOB 1-kS/s local asynchronous successive approximation register ADC for implantable medical device. IEEE Trans. Very Large Scale Integr. (VLSI) Syst. 22(10), 2221-2225 (2014)
Implantable MicroSystems for Personalised Anti-Cancer Therapy (IMPACT) project being conducted by the University of Edinburgh, Current, Available online at https://impact.eng.ed.ac.uk
J.A. Paradiso, T. Starner, Energy scavenging for mobile and wireless electronics. IEEE Pervasive Comput. 4(1), 18-27 (2005)
T. Le, K. Mayaram, T. Fiez, Efficient far-field radio frequency energy harvesting for passively powered sensor networks. IEEE J. Solid-State Circuits 43(5), 1287-1302 (2008)
B. Li, X. Shao, N. Shahshahan, N. Goldsman, T. Salter, G.M. Metze, An antenna co-design dual band RF energy harvester. IEEE Trans. Circuits Syst. I: Regul. Pap. 60(12), 3256-3266 (2013)
A.M. Sodagar, K. Najafi, K.D. Wise, M. Ghovanloo, Fully-integrated CMOS power regulator for telemetry-powered implantable biomedical microsystems, in IEEE Custom Integrated Circuits Conference 2006, San Jose (2006), pp. 659-662
M. Ghovanloo, K. Najafi, Fully integrated wideband high-current rectifiers for inductively powered devices. IEEE J. Solid-State Circuits 39(11), 1976-1984 (2004)
G. Wang, W. Liu, M. Sivaprakasam, G.A. Kendir, Design and analysis of an adaptive transcutaneous power telemetry for biomedical implants. IEEE Trans. Circuits Syst. I: Regul.Pap. 52(10), 2109-2117 (2005)
S. Roundy, P.K. Wright, J. Rabaey, A study of low level vibrations as a power source for wireless sensor nodes. Comput. Commun. 26(11), 1131-1144 (2003)
S. Roundy et al., Improving power output for vibration-based energy scavengers. IEEE Pervasive Comput. 4(1), 28-36 (2005)
E. Romero, R.O. Warrington, M.R. Neuman, Body motion for powering biomedical devices, in 2009 Annual International Conference of the IEEE Engineering in Medicine and Biology Society, Minneapolis (2009), pp. 2752-2755
M.J. Ramsay, W.W. Clark, Piezoelectric energy harvesting for bio-MEMS applications, in Proceedings of SPIE 2001, vol. 4332 (2001)
P. Niu, P. Chapman, Design and performance of linear biomechanical energy conversion devices, in 2006 37th IEEE Power Electronics Specialists Conference, Jeju (2006), pp. 1-6
P. Niu, P. Chapman, L. DiBerardino, E. Hsiao-Wecksler, Design and optimization of a biomechanical energy harvesting device, in 2008 IEEE Power Electronics Specialists Conference, Rhodes (2008), pp. 4062-4069
E. Romero-Ramirez, Energy harvesting from body motion using rotational micro-generation. Dissertation, Michigan Technological University (2010). Available online at: http://digitalcommons.mtu.edu/etds/404
C. Dagdeviren, B. Duk Yang, Y. Su, P.L. Tran, P. Joe, E. Anderson, J. Xia, V. Doraiswamy, B. Dehdashti, X. Feng, B. Lu, R. Poston, Z. Khalpey, R. Ghaffari, Y. Huang, M.J. Slepian, J.A. Rogers, Conformal piezoelectric energy harvesting and storage from motions of the heart, lung, and diaphragm. PNAS 2014 111(5), 1927-1932
A. Khaligh, P. Zeng, C. Zheng, Kinetic energy harvesting using piezoelectric and electromagnetic technologies-state of the art. IEEE Trans. Ind. Electron. 57(3), 850-860 (2010)
J. Kymissis, C. Kendall, J. Paradiso, N. Gershenfeld, Parasitic power harvesting in shoes, in Digest of Papers. Second International Symposium on Wearable Computers (Cat. No.98EX215), Pittsburgh (1998), pp. 132-139
N.S. Shenck, A demonstration of useful electric energy generation from piezoceramics in a shoe. M. S. thesis, MIT, Cambridge, MA, 1999
N.S. Shenck, J.A. Paradiso, Energy scavenging with shoe-mounted piezoelectrics. IEEE Micro 21(3), 30-42 (2001)
G.D. Szarka, B.H. Stark, S.G. Burrow, Review of power conditioning for kinetic energy harvesting systems. IEEE Trans. Power Electron. 27(2), 803-815 (2012)
P.D. Mitcheson, T. Sterken, C. He, M. Kiziroglou, E.M. Yeatman, R. Puers, Electrostatic microgenerators. Meas. Control 41(4), 114-119 (2008)
W.J. Li, G.M.H. Chan, N.N.H. Ching, P.H.W. Leong, H.Y. Wong, Dynamical modeling and simulation of a laser-micromachined vibration-based micro power generator. Int. J. Nonlinear Sci. Simul. 1, 345353 (2000)
C.B. Williams, S. Shearwood, M.A. Harradine, P.H. Mellor, T.S. Birch, R.B. Yates, Development of an electromagnetic micro-generator. IEE Proc. Circuits Dev. Syst. 148(6), 337342 (2001)
J. Boland, Micro electret power generators. PhD. Thesis, California Institute of Technology, 2005. Available online at: https://thesis.library.caltech.edu/5228/1/JustinBoland.pdf
S.P. Beeby, M.J. Tudor, E. Koukharenko, N.M. White, T. ÓDonnell, C. Saha, S. Kulkarni, S. Roy, Micromachined silicon generator for harvesting power from vibrations, in Presented at the Fourth International Workshop on Micro and Nanotechnology for Power Generation and Energy Conversion Applications, Kyoto (2004)
T.N. Krupenkin, Method and Apparatus for Energy Harvesting Using Microfluidics, U. S. Patent 8, 053, 914 B1, 8 Nov 2011
K.H. Rosen, Discrete Mathematics and Its Applications, 4th edn. (McGraw-Hill, New York, 1999)
B. Razavi, Design of Analog CMOS Integrated Circuits (McGraw-Hill, Boston, 2001)
G. Gilman, Electrostatic Energy Generators and Uses of Same, U. S. Patent 6, 936, 994 B1, 30 Aug 2005
S.H. Daneshvar, M. Maymandi-Nejad, M. Sachdev, J. Redouté, A charge-depletion study of an electrostatic generator with adjustable output voltage. IEEE Sens. J. 19(3), 1028-1039 (2019)
S.H. Daneshvar, M. Maymandi-Nejad, A new electro-static micro-generator for energy harvesting from diaphragm muscle. Int. J. Circuit Theory Appl. 45(12), 2307-2328 (2017)
A. Kempitiya, D.A. Borca-Tasciuc, M.M. Hella, Low-power ASIC for microwatt electrostatic energy harvesters. IEEE Trans. Ind. Electron. 60(12), 5639-5647 (2013)
T.N. Krupenkin, Method and Apparatus for Energy Harvesting Using Microfluidics, U. S. Patent 8, 053, 914 B1, 8 Nov 2011
T. Mussivand, P.J. Hendry, R.G. Masters, W.J. Keon, Progress with the heartSaver ventricular assist device. Ann. Thoracic Surg. 1999, 68(2), 785-789 (1999)
J. Boland, Micro electret power generators. PhD. Thesis, California Intitute of Technology, Available online at: https://thesis.library.caltech.edu/5228/1/JustinBoland.pdf
B.C. Yen, J.H. Lang, A variable capacitance vibration-to-electric energy harvester. IEEE Trans. Circuits Syst. I Reg. Papers 53(2), 288295 (2006)
A. Dudka, D. Galayko, E. Blokhina, P. Basset, Smart integrated conditioning electronics for electrostatic vibration energy harvesters, in 2014 IEEE International Symposium on Circuits and Systems (ISCAS), Melbourne, 2014, pp. 2600-2603
S.H. Daneshvar, M. Maymandi-Nejad, M.R. Yuce, J.-M. Redouté, A performance comparison between synchronous and asynchronous electrostatic harvesters, in 2019 IEEE International Conference on Industrial Technology (ICIT), 2019, pp. 349-354
A. Kempitiya, D.A. Borca-Tasciuc, M.M. Hella, Low-power ASIC for microwatt electrostatic energy harvesters. IEEE Trans. Ind. Electron. 60(12), 5639-5647 (2013)
S. Meninger, J.O. Mur-Miranda, R. Amirtharajah, A. Chandrakasan, J.H. Lang, Vibration-toelectric energy conversion. IEEE Trans. Very Large Scale Integr. (VLSI) Syst. 9(1), 64-76 (2001)
S. H. Daneshvar, M. Maymandi-Nejad, M.R. Yuce, J.-M. Redouté, A variable-capacitance energy harvester with miniaturized inductor targeting implantable devices. IEEE Trans. Ind. Electron. 69(1), 475-484 (2022)
S.H. Daneshvar, M. Maymandi-Nejad, A new electro-static micro-generator for energy harvesting from diaphragm muscle. Int. J. Circuit Theory Appl. 45(12), 2307-2328 (2017)
S.H. Daneshvar, M. Maymandi-Nejad, M. Sachdev, J. Redouté, A charge-depletion study of an electrostatic generator with adjustable output voltage. IEEE Sens. J. 19(3), 1028-1039 (2019)