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008181129s2018 ||| | | | eng d
020 ▼a 9780438168664
035 ▼a (MiAaPQ)AAI10823126
035 ▼a (MiAaPQ)umn:19192
040 ▼a MiAaPQ ▼c MiAaPQ ▼d 248032
0491 ▼f DP
0820 ▼a 621
1001 ▼a Jenkins, Kory.
24510 ▼a Modeling and Fabrication of Piezoelectric Nanomaterial Devices for Sensing and Energy Harvesting.
260 ▼a [S.l.] : ▼b University of Minnesota., ▼c 2018
260 1 ▼a Ann Arbor : ▼b ProQuest Dissertations & Theses, ▼c 2018
300 ▼a 122 p.
500 ▼a Source: Dissertation Abstracts International, Volume: 79-12(E), Section: B.
500 ▼a Advisers: Rusen Yang
5021 ▼a Thesis (Ph.D.)--University of Minnesota, 2018.
520 ▼a Piezoelectric nanomaterials are the basis for many devices including sensors and energy harvesters, but more work is needed to realize the advantages of emerging materials and new designs. Barriers to the continued development of these devices i
520 ▼a Diphenylalanine (FF) peptide is an emerging bio-inspired piezoelectric material. However, limited information is available to predict its piezoelectric performance compared to conventional materials. In addition to piezoelectricity, nanomaterial
520 ▼a Finite element models were designed to predict piezoelectric potential in FF peptide. A model of a flexible FF peptide nanogenerator was created, and the nanogenerator was fabricated for mechanical energy harvesting. Next, a finite element model
520 ▼a Results of finite element models successfully predicted the piezoelectric behavior of a fabricated FF peptide nanogenerator, and suggest that a proposed tactile sensor could exceed the sensitivity of human mechanoreceptors. A mechanical transfer
590 ▼a School code: 0130.
650 4 ▼a Mechanical engineering.
650 4 ▼a Nanotechnology.
690 ▼a 0548
690 ▼a 0652
71020 ▼a University of Minnesota. ▼b Mechanical Engineering.
7730 ▼t Dissertation Abstracts International ▼g 79-12B(E).
773 ▼t Dissertation Abstract International
790 ▼a 0130
791 ▼a Ph.D.
792 ▼a 2018
793 ▼a English
85640 ▼u http://www.riss.kr/pdu/ddodLink.do?id=T14998545 ▼n KERIS
980 ▼a 201812 ▼f 2019
990 ▼a 관리자 ▼b 관리자