Skip navigation
  • 中文
  • English

DSpace CRIS

  • DSpace logo
  • 首頁
  • 研究成果檢索
  • 研究人員
  • 單位
  • 計畫
  • 分類瀏覽
    • 研究成果檢索
    • 研究人員
    • 單位
    • 計畫
  • 機構典藏
  • SDGs
  • 登入
  • 中文
  • English
  1. National Taiwan Ocean University Research Hub
  2. SDGs
  3. 07 AFFORDABLE & CLEAN ENERGY
請用此 Handle URI 來引用此文件: http://scholars.ntou.edu.tw/handle/123456789/2048
標題: Integration of Nanoscale and Macroscale Graphene Heterostructures for Flexible and Multilevel Nonvolatile Photoelectronic Memory
作者: Liou, Yi-Rou
Lin, Hsia Yu
Shen, Tien Lin
Cai, Shu Yi
Wu, Ya Hsuan
Liao, Yu Ming
Lin, Hung I.
Chen, Tzu Pei
Tai-Yuan Lin 
Chen, Yang Fang
關鍵字: DEVICE;POLY(3-HEXYLTHIOPHENE);TRANSISTORS;DESIGN;HYBRID
公開日期: 一月-2020
出版社: AMER CHEMICAL SOC
卷: 3
期: 1
起(迄)頁: 608-616
來源出版物: ACS APPL NANO MATER
摘要: 
The development of optical memory with attractive features such as long-lasting, nonvolatile, high-speed, and low-energy consumption is vitally important in the information age. Owing to these advantages, optical memory has been popular for more 10 years. Recently, flexibility has become desirable for the application of wearable devices and smart artificial intelligence; for conventional optical memory, this is still difficult to achieve. To combine optical memory with soft materials, this study presents a flexible and photoelectronic switchable multilevel memory device with long-lasting nonvolatile properties. On the basis of the integration of nanoscale (graphene nanoflakes) and macroscale graphene heterojunctions, a device achieves switchable memory states up to 196 distinct levels under the illumination of lasers with different wavelengths. The photoelectronic memory device can be written optically and erased by both optical and electric methods. Additionally, the device possesses several unique features including a low working bias of 0.5 V, nonvolatility for over 10 000 s, and mechanical stability for more than 10 000 bending cycles. Notably, in previous studies, polymers with poor mobility were used as a conducting channel, which can greatly limit the amplitude of the light-induced switching ratio and electrical performance. In stark contrast, in our device, the graphene layer with the mobility exceeding several orders of magnitude was used to serve as a conducting channel, enabling one to overcome the existing shortcoming. Our approach therefore not only provides an alternative paradigm for the development of photoelectronic memory but also holds great promise for practical applications due to its compatibility with current technologies.
URI: http://scholars.ntou.edu.tw/handle/123456789/2048
ISSN: 2574-0970
DOI: 10.1021/acsanm.9b02149
顯示於:光電與材料科技學系
07 AFFORDABLE & CLEAN ENERGY

顯示文件完整紀錄

Google ScholarTM

檢查

Altmetric

Altmetric

TAIR相關文章


在 IR 系統中的文件,除了特別指名其著作權條款之外,均受到著作權保護,並且保留所有的權利。

瀏覽
  • 機構典藏
  • 研究成果檢索
  • 研究人員
  • 單位
  • 計畫
DSpace-CRIS Software Copyright © 2002-  Duraspace   4science - Extension maintained and optimized by NTU Library Logo 4SCIENCE 回饋