2016
DOI: 10.1063/1.4938497
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Shapeable magnetoelectronics

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Cited by 150 publications
(111 citation statements)
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“…Furthermore, high film porosity and roughness at the interface semiconductor/gate dielectrics have been demonstrated to be detrimental for the TFT performance. 190,238 The impact of residual ligands, grain boundaries, as well as interfacial roughness generally limit the carrier mobility of flexible n-type solution-processed metal oxide semiconductor NP TFTs in approach (A) to below 1 cm 2 . 76,227 Nevertheless, difficulties of alignment and accurate placement of the NWs with respect to the source/drain electrodes are a drawback for more widespread applications.…”
Section: Fabrication Techniquesmentioning
confidence: 99%
“…Furthermore, high film porosity and roughness at the interface semiconductor/gate dielectrics have been demonstrated to be detrimental for the TFT performance. 190,238 The impact of residual ligands, grain boundaries, as well as interfacial roughness generally limit the carrier mobility of flexible n-type solution-processed metal oxide semiconductor NP TFTs in approach (A) to below 1 cm 2 . 76,227 Nevertheless, difficulties of alignment and accurate placement of the NWs with respect to the source/drain electrodes are a drawback for more widespread applications.…”
Section: Fabrication Techniquesmentioning
confidence: 99%
“…This possibility may open up a direction to tailor the interfacial magnetic anisotropy in thin ferromagnetic films without any additional layers of heavy metal, which, in turn, may lead to simpler and cheaper ways to engineer systems with any given anisotropy. Nowadays, the curvature effects in thin magnetic films are becoming more accessible due to experimental advances in flexible electronics [23][24][25][26][27], making the proposed method to control the anisotropy experimentally viable in the near future. Moreover, our findings suggest that similar effects might be observed in thin films with significant surface roughness.…”
mentioning
confidence: 99%
“…[1][2][3][4][5][6] Some of the most effective and practical technologies for electrochemical energy conversion and storage are batteries, fuel cells, and supercapacitors. [7][8][9][10][11][12][13][14][15] Among them, supercapacitors (SCs) have attracted intensive attentions due to their high power density and long lifecycle.…”
mentioning
confidence: 99%