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| 1 | Magnetoelectric Effect in Composites of Magnetostrictive and Piezoelectric Materials显示文摘 | Jungho Ryu Shashank Priya Kenji Uchino Hyoun-Ee Kim | 2002 | Journal of Electroceramics2002,,2: | 1 |
| 2 | 显示文摘 | Shashank Priya Eugene Furman | 2002 | J Appl Phys2002,91,9: | 1 |
| 3 | Peizoelectric MEMS for energy harvesting显示文摘 | Sang-Gook Kim Shashank Priya lsaku Kanno | 2012 | Materials Research Society2012,37,12: | 1 |
| 4 | Piezoelectric Energy Harvesting under High Pre-Stressed Cyclic Vibrations显示文摘 | Hyeoung Woo Kim Shashank Priya Ke-nji Uchino | 2005 | Journal of Electroceramics2005,15,: | 1 |
| 5 | Effect of piezoelectric grain size on magnetoelectric coefficient of Pb(Zr0.52Ti0.48)O3–Ni0.8Zn0.2Fe2O4 particulate composites显示文摘 | Rashed Adnan Islam Shashank Priya | 2008 | Journal of Materials Science2008,,10: | 1 |
| 6 | Magnetoelectric Effect in Composites of Magnetostrictive and Piezoelectric Materials显示文摘 | Jungho Ryu Shashank Priya Kenji Uchino Hyoun-Ee Kim | 2002 | Journal of Electroceramics2002,,2: | 1 |
| 7 | Magnetoelectric Effect in Composites of Magnetostrictive and Piezoelectric Materials 显示文摘 | Jungho Ryu Shashank Priya Kenji Uchino | 2002 | Journal of Electroceramics2002,8,: | 1 |
| 8 | Magnetoelectric Effect in Composites of Magnetostrictive and Piezoelectric Materials显示文摘 | Jungho Ryu Shashank Priya Kenji Uchino Hyoun-Ee Kim | 2002 | Journal of Electroceramics2002,,2: | 1 |
| 9 | Magnetoelectric Effect in Composites of Magnetostrictive and Piezoelectric Materials显示文摘 | Jungho Ryu Shashank Priya Kenji Uchino Hyoun-Ee Kim | 2002 | Journal of Electroceramics2002,,2: | 1 |
| 10 | al, Magnetoelectric effect in composites of magnetostrictive and piezoelectric materials 显示文摘 | Jungho Ryu Shashank Priya Kenji Uchino et | 2002 | Journal of Electroceramics2002,,8: | 1 |
| 11 | Effect of the magnetostrictive layer on magnetoelectric properties in lead zirconate titanate/terfenol-D laminate composites 显示文摘 | Jungho Ryu Shashank Priya | 2001 | Ceram Sci2001,84,12: | 1 |
| 12 | Magnetoelectric effect in composites of magnetostrictive and piezo-electric materials 显示文摘 | Jungho Ryu Shashank Priya Kenji Uchino Hyoun-Ee Kim | 2002 | Journal of Electroceramics2002,8,2: | 1 |
| 13 | Investigation of the Ferroelectric Orthorhombic Phase in the Pb(Zn 1/3 Nb 2/3 )O 3 -PbTiO 3 System显示文摘 | Shashank Priya Jungho Ryu Leslie Eric Cross Kenji Uchino Dwight Viehland | 2002 | Ferroelectrics2002,,1: | 1 |
| 14 | Advances in energy harvesting using low profile piezoelectric transducers 显示文摘 | Shashank Priya | 2007 | J Electroeeram2007,,19: | 1 |
| 15 | Implantable photoelectronic charging(I-PEC)for medical implants显示文摘Medical implants with functionalities such as sensing,health monitoring,stimulation,diagnosis,and physiological treatment are rapidly growing.With the increasing functional sophistication and addition of modules such as data transmission,on-chip processing,and data storage,energy demand of the implantable system is also growing.Using implantable energy harvester either to recharge or ultimately replace hazardous battery is essential to provide a long-term sustainable solution.Energy harvesting techniques using piezoelectric,thermoelectric,radio frequency power transmission,biofuel,and photoelectronic(or sometimes termed as“photovoltaic”in terms of solar light harvesting,i.e.,PV)conversion,have been attempted for the implantable,but these methods are currently limited by insufficient power output,large footprint,and low efficiency.Nevertheless,the planar PV with potential of lighter weight,higher energy density,and higher efficiency,provides promising power solution for in-body medical implants.In this short review,we will discuss the potential opportunities and challenges associated with PV's for medical implants,covering materials,to devices,and to system level requirements. | Kai Wang Sumanta Kumar Karan Mohan Sanghadasa Congcong Wu Shashank Priya | 2022 | Energy Reviews2022,1,2: | 0 |
| 16 | Interfacial charge-transfer engineering by ionic liquid for high performance planar CH3NH3PbBr3 solar cells显示文摘The energy barrier at the CH_3NH_3Pb Br_3/TiO_2interface hinders the electron transfer from CH_3NH_3Pb Br_3to compact TiO_2(cp-TiO_2).Ionic liquid(IL),that forms dipoles pointing away from TiO_2,can adjust the work function of TiO_2resulting in suitable energy level for charge transfer from CH_3NH_3Pb Br_3to TiO_2.The time-resolved photoluminescence spectroscopy(TRPL)measurements confirm faster electron transfer from the CH_3NH_3Pb Br_3film to TiO_2after modification by IL.Solar cells based on IL modified cp-TiO_2demonstrate efficiency of~6%,much higher than the devices(0.2%)fabricated using untreated cp-TiO_2as the electron transport layer. | Xiaojia Zheng Wei Yu Shashank Priya | 2018 | Journal of Energy Chemistry2018,27,3: | 0 |