Two-dimensional materials in functional three-dimensional architectures with applications in photodetection and imaging

被引:0
|
作者
Wonho Lee
Yuan Liu
Yongjun Lee
Bhupendra K. Sharma
Sachin M. Shinde
Seong Dae Kim
Kewang Nan
Zheng Yan
Mengdi Han
Yonggang Huang
Yihui Zhang
Jong-Hyun Ahn
John A. Rogers
机构
[1] Yonsei University,School of Electrical and Electronic Engineering
[2] Tsinghua University,Department of Engineering Mechanics, Center for Mechanics and Materials and Center for Flexible Electronics Technology, AML
[3] Northwestern University,Departments of Materials Science and Engineering, Biomedical Engineering, Chemistry, Mechanical Engineering, Electrical Engineering and Computer Science, Center for Bio
[4] Northwestern University,Integrated Electronics, Simpson Querrey Institute for Nano/Biotechnology
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Efficient and highly functional three-dimensional systems that are ubiquitous in biology suggest that similar design architectures could be useful in electronic and optoelectronic technologies, extending their levels of functionality beyond those achievable with traditional, planar two-dimensional platforms. Complex three-dimensional structures inspired by origami, kirigami have promise as routes for two-dimensional to three-dimensional transformation, but current examples lack the necessary combination of functional materials, mechanics designs, system-level architectures, and integration capabilities for practical devices with unique operational features. Here, we show that two-dimensional semiconductor/semi-metal materials can play critical roles in this context, through demonstrations of complex, mechanically assembled three-dimensional systems for light-imaging capabilities that can encompass measurements of the direction, intensity and angular divergence properties of incident light. Specifically, the mechanics of graphene and MoS2, together with strategically configured supporting polymer films, can yield arrays of photodetectors in distinct, engineered three-dimensional geometries, including octagonal prisms, octagonal prismoids, and hemispherical domes.
引用
收藏
相关论文
共 50 条
  • [21] Two-dimensional imaging and effective inversion of a three-dimensional buried object
    Budko, NV
    Remis, RF
    van den Berg, PM
    [J]. IEICE TRANSACTIONS ON ELECTRONICS, 2000, E83C (12) : 1889 - 1895
  • [22] Influence of Two-dimensional and Three-dimensional Imaging on Endoscopic Bowel Suturing
    George B. Hanna
    Alfred Cuschieri
    [J]. World Journal of Surgery, 2000, 24 : 444 - 449
  • [23] Three-Dimensional Photoacoustic Imaging Using a Two-Dimensional CMUT Array
    Vaithilingam, Srikant
    Ma, Te-Jen
    Furukawa, Yukio
    Wygant, Ira O.
    Zhuang, Xuefeng
    De la Zerda, Adam
    Oralkan, Oemer
    Kamaya, Aya
    Gambhir, Sanjiv S.
    Jeffrey, R. Brooke, Jr.
    Khuri-Yakub, Butrus T.
    [J]. IEEE TRANSACTIONS ON ULTRASONICS FERROELECTRICS AND FREQUENCY CONTROL, 2009, 56 (11) : 2411 - 2419
  • [24] Three-dimensional solutions for two-dimensional problems
    Shen, A
    [J]. MATHEMATICAL INTELLIGENCER, 1997, 19 (03): : 44 - 47
  • [25] Three-dimensional surface and two-dimensional contour
    Nozawa, S
    [J]. PERCEPTION, 2002, 31 : 160 - 160
  • [26] Three-Dimensional Forces for Two-Dimensional Motion
    Verkhovsky, Alexander B.
    [J]. BIOPHYSICAL JOURNAL, 2015, 108 (04) : 781 - 782
  • [27] Licata: Two-dimensional and three-dimensional art
    Cristiani, MLT
    [J]. CRITICA D ARTE, 2002, 65 (16): : 19 - 20
  • [28] Two-Dimensional Modeling of Three-Dimensional Waves
    Chalikov, D.
    [J]. OCEANOLOGY, 2021, 61 (06) : 850 - 860
  • [29] Two-Dimensional Modeling of Three-Dimensional Waves
    D. Chalikov
    [J]. Oceanology, 2021, 61 : 850 - 860
  • [30] Two-dimensional turbulence in three-dimensional flows
    Xia, H.
    Francois, N.
    [J]. PHYSICS OF FLUIDS, 2017, 29 (11)