Enhanced Imaging Using Inverse Design of Nanophotonic Scintillators

被引:10
|
作者
Shultzman, Avner [1 ,2 ]
Segal, Ohad [1 ]
Kurman, Yaniv [1 ]
Roques-Carmes, Charles [3 ]
Kaminer, Ido [1 ]
机构
[1] Technion Israel Inst Technol, Solid State Inst, IL-32000 Haifa, Israel
[2] Weizmann Inst Sci, IL-76100 Rehovot, Israel
[3] MIT, Res Lab Elect, 77 Massachusetts Ave, Cambridge, MA 02139 USA
关键词
inverse design; nanophotonic scintillators; Purcell effect; spontaneous emission; PLASTIC SCINTILLATOR; SPONTANEOUS EMISSION; OPTIMIZATION; PERFORMANCE; EFFICIENCY; RADIATION; DETECTOR;
D O I
10.1002/adom.202202318
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Converting ionizing radiation into visible light is essential in a wide range of fundamental and industrial applications, such as electromagnetic calorimeters in high-energy particle detectors, electron detectors, image intensifiers, and X-ray imaging. These different areas of technology all rely on scintillators or phosphors, i.e., materials that emit light upon bombardment by high-energy particles. In all cases, the emission is through spontaneous emission. The fundamental nature of spontaneous emission poses limitations on all these technologies, imposing an intrinsic trade-off between efficiency and resolution in all imaging applications: thicker phosphors are more efficient due to their greater stopping power, which however comes at the expense of image blurring due to light spread inside the thicker phosphors. Here, the concept of inverse-designed nanophotonic scintillators is proposed, which can overcome the trade-off between resolution and efficiency by reshaping the intrinsic spontaneous emission. To exemplify the concept, multilayer phosphor nanostructures are designed and these nanostructures are compared to state-of-the-art phosphor screens in image intensifiers, showing a threefold resolution enhancement simultaneous with a threefold efficiency enhancement. The enabling concept is applying the ubiquitous Purcell effect for the first time in a new context-for improving image resolution. Looking forward, this approach directly applies to a wide range of technologies, including X-ray imaging applications.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] The Inverse Design of Nanophotonic Structure Based on Neural Network
    Tian L.
    Pan P.
    Liu Y.
    Beijing Youdian Daxue Xuebao/Journal of Beijing University of Posts and Telecommunications, 2022, 45 (03): : 112 - 116
  • [22] Topological inverse design of nanophotonic devices with energy constraint
    Zhang, Guowu
    Xu, Dan-Xia
    Grinberg, Yuri
    Liboiron-Ladouceur, Odile
    OPTICS EXPRESS, 2021, 29 (08): : 12681 - 12695
  • [23] Deep Neural Networks for Inverse Design of Nanophotonic Devices
    Kojima, Keisuke
    Tahersima, Mohammad H.
    Koike-Akino, Toshiaki
    Jha, Devesh K.
    Tang, Yingheng
    Wang, Ye
    Parsons, Kieran
    JOURNAL OF LIGHTWAVE TECHNOLOGY, 2021, 39 (04) : 1010 - 1019
  • [24] Inverse Design of Next-Generation Nanophotonic Devices
    Tutgun, Mediha
    Yilmaz, Yusuf Abdulaziz
    Yeltik, Aydan
    Yilmaz, Done
    Alpkilic, Ahmet Mesut
    Kurt, Hamza
    2018 26TH SIGNAL PROCESSING AND COMMUNICATIONS APPLICATIONS CONFERENCE (SIU), 2018,
  • [25] Inverse design of a three-dimensional nanophotonic resonator
    Lu, Jesse
    Boyd, Stephen
    Vuckovic, Jelena
    OPTICS EXPRESS, 2011, 19 (11): : 10563 - 10570
  • [26] Adjoint Method and Inverse Design for Nonlinear Nanophotonic Devices
    Hughes, Tyler W.
    Minkov, Momchil
    Williamson, Ian A. D.
    Fan, Shanhui
    ACS PHOTONICS, 2018, 5 (12): : 4781 - 4787
  • [27] Machine Learning in Interpolation and Extrapolation for Nanophotonic Inverse Design
    Acharige, Didulani
    Johlin, Eric
    ACS OMEGA, 2022, 7 (37): : 33537 - 33547
  • [28] Wavelength Controllable Forward Prediction and Inverse Design of Nanophotonic Devices Using Deep Learning
    Song, Yuchen
    Wang, Danshi
    Ye, Han
    Qin, Jun
    Zhang, Min
    2020 EUROPEAN CONFERENCE ON OPTICAL COMMUNICATIONS (ECOC), 2020,
  • [29] Inverse design of coherent supercontinuum generation using free-form nanophotonic waveguides
    Lee, Chia-Yi
    Liu, Yanwu
    Cheng, Yinke
    Lao, Chenghao
    Yang, Qi-Fan
    APL PHOTONICS, 2024, 9 (06)
  • [30] Inverse Design of Nanophotonic and Radio-Frequency Devices using Fast Maxwell Solvers
    Aslanyan, Davit
    Zheng, Yifei
    Hu, Jin
    Sideris, Constantine
    2024 INTERNATIONAL APPLIED COMPUTATIONAL ELECTROMAGNETICS SOCIETY SYMPOSIUM, ACES 2024, 2024,