Nanogenerators as a Sustainable Power Source

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Nanomaterials 2019, 9, 773 27 of 35 36. Sohn, J.I.; Cha, S.N.; Song, B.G.; Lee, S.; Kim, S.M.; Ku, J.; Kim, H.J.; Park, Y.J.; Choi, B.L.; Wang, Z.L.; et al. Engineering of efficiency limiting free carriers and an interfacial energy barrier for an enhancing piezoelectric generation. Energy Environ. Sci. 2013, 6, 97–104. [CrossRef] 37. Ram, C.; Sivamani, S.; Micha Premkumar, T.; Hariram, V. Computational study of leading edge jet impingement cooling with a conical converging hole for blade cooling. ARPN J. Eng. Appl. Sci. 2017, 12, 6397–6406. 38. Shin, S.H.; Kim, Y.H.; Lee, M.H.; Jung, J.Y.; Seol, J.H.; Nah, J. Lithium-doped zinc oxide nanowires-polymer composite for high performance flexible piezoelectric nanogenerator. ACS Nano 2014, 8, 10844–10850. [CrossRef] 39. Pham, T.T.; Lee, K.Y.; Lee, J.-H.; Kim, K.-H.; Shin, K.-S.; Gupta, M.K.; Kumar, B.; Kim, S.-W. Reliable operation of a nanogenerator under ultraviolet light via engineering piezoelectric potential. Energy Environ. Sci. 2013, 6, 841–846. [CrossRef] 40. Zhou, Y.S.; Wang, K.; Han, W.; Rai, S.C.; Zhang, Y.; Ding, Y.; Pan, C.; Zhang, F.; Zhou, W.; Wang, Z.L. Vertically aligned cdse nanowire arrays for energy harvesting and piezotronic devices. ACS Nano 2012, 6, 6478–6482. [CrossRef] 41. Han, M.; Zhang, X.S.; Meng, B.; Liu, W.; Tang, W.; Sun, X.; Wang, W.; Zhang, H. R-shaped hybrid nanogenerator with enhanced piezoelectricity. ACS Nano 2013, 7, 8554–8560. [CrossRef] 42. Cho, K.S.; Kim, D.H.; Kim, Y.H.; Nah, J.; Kim, H.K. Li-doped Cu2O/ZnO heterojunction for flexible and semi-transparent piezoelectric nanogenerators. Ceram. Int. 2017, 43, 2279–2287. [CrossRef] 43. Lu, S.; Liao, Q.; Qi, J.; Liu, S.; Liu, Y.; Liang, Q.; Zhang, G.; Zhang, Y. The enhanced performance of piezoelectric nanogenerator via suppressing screening effect with Au particles/ZnO nanoarrays Schottky junction. Nano Res. 2016, 9, 372–379. [CrossRef] 44. Ghosh, S.K.; Mandal, D. High-performance bio-piezoelectric nanogenerator made with fish scale. Appl. Phys. Lett. 2016, 109, 103701. [CrossRef] 45. Xu, H.B.; Lee, T.G.; Park, S.J.; Kim, B.Y.; Nahm, S. Sodium-potassium niobate nanorods with various crystal structures and their application to nanogenerator. J. Am. Ceram. Soc. 2017, 100, 1673–1681. [CrossRef] 46. Chen, X.; Li, X.; Shao, J.; An, N.; Tian, H.; Wang, C.; Han, T.; Wang, L.; Lu, B. High-Performance Piezoelectric Nanogenerators with Imprinted P(VDF-TrFE)/BaTiO3Nanocomposite Micropillars for Self-Powered Flexible Sensors. Small 2017, 13, 1604245. [CrossRef] 47. Dudem, B.; Kim, D.H.; Bharat, L.K.; Yu, J.S. Highly-flexible piezoelectric nanogenerators with silver nanowires and barium titanate embedded composite films for mechanical energy harvesting. Appl. Energy 2018, 230, 865–874. [CrossRef] 48. Shi, K.; Sun, B.; Huang, X.; Jiang, P. Synergistic effect of graphene nanosheet and BaTiO3nanoparticles on performance enhancement of electrospun PVDF nanofiber mat for flexible piezoelectric nanogenerators. Nano Energy 2018, 52, 153–162. [CrossRef] 49. Jenkins, K.; Kelly, S.; Nguyen, V.; Wu, Y.; Yang, R. Piezoelectric diphenylalanine peptide for greatly improved flexible nanogenerators. Nano Energy 2018, 51, 317–323. [CrossRef] 50. Yan, J.; Liu, M.; Jeong, Y.G.; Kang, W.; Li, L.; Zhao, Y.; Deng, N.; Cheng, B.; Yang, G. Performance Enhancements in Poly(vinylidene fluoride)-based Piezoelectric Nanogenerators for Efficient Energy Harvesting. Nano Energy 2018, 56, 662–692. [CrossRef] 51. Filippin, A.N.; Sanchez-Valencia, J.R.; Garcia-Casas, X.; Lopez-Flores, V.; Macias-Montero, M.; Frutos, F.; Barranco, A.; Borras, A. 3D core-multishell piezoelectric nanogenerators. Nano Energy 2019, 58, 476–483. [CrossRef] 52. Kang, J.H.; Jeong, D.K.; Ha, J.S.; Lee, J.K.; Ryu, S.W. Enhanced performance of a GaN piezoelectric nanogenerator with an embedded nanoporous layer via the suppressed carrier screening effect. Semicond. Sci. Technol. 2017, 32, 025001. [CrossRef] 53. Kang, J.H.; Jeong, D.K.; Ryu, S.W. Transparent, Flexible Piezoelectric Nanogenerator Based on GaN Membrane Using Electrochemical Lift-Off. ACS Appl. Mater. Interfaces 2017, 9, 10637–10642. [CrossRef] [PubMed] 54. Johar, M.A.; Kang, J.H.; Hassan, M.A.; Ryu, S.W. A scalable, flexible and transparent GaN based heterojunction piezoelectric nanogenerator for bending, air-flow and vibration energy harvesting. Appl. Energy 2018, 222, 781–789. [CrossRef] 55. Johar, M.; Hassan, M.; Waseem, A.; Ha, J.-S.; Lee, J.; Ryu, S.-W. Stable and High Piezoelectric Output of GaN Nanowire-Based Lead-Free Piezoelectric Nanogenerator by Suppression of Internal Screening. Nanomaterials 2018, 8, 437. [CrossRef]

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