TY - JOUR
T1 - Electronically Reconfigurable Photonic Switches Incorporating Plasmonic Structures and Phase Change Materials
AU - Farmakidis, Nikolaos
AU - Youngblood, Nathan
AU - Lee, June Sang
AU - Feldmann, Johannes
AU - Lodi, Alessandro
AU - Li, Xuan
AU - Aggarwal, Samarth
AU - Zhou, Wen
AU - Bogani, Lapo
AU - Pernice, Wolfram H.P.
AU - Wright, C. David
AU - Bhaskaran, Harish
N1 - Publisher Copyright:
© 2022 The Authors. Advanced Science published by Wiley-VCH GmbH.
PY - 2022/7/15
Y1 - 2022/7/15
N2 - The ever-increasing demands for data processing and storage will require seamless monolithic co-integration of electronics and photonics. Phase-change materials are uniquely suited to fulfill this function due to their dual electro-optical sensitivity, nonvolatile retention properties, and fast switching dynamics. The extreme size disparity however between CMOS electronics and dielectric photonics inhibits the realization of efficient and compact electrically driven photonic switches, logic and routing elements. Here, the authors achieve an important milestone in harmonizing the two domains by demonstrating an electrically reconfigurable, ultra-compact and nonvolatile memory that is optically accessible. The platform relies on localized heat, generated within a plasmonic structure; this uniquely allows for both optical and electrical readout signals to be interlocked with the material state of the PCM while still ensuring that the writing operation is electrically decoupled. Importantly, by miniaturization and effective thermal engineering, the authors achieve unprecedented energy efficiency, opening up a path towards low-energy optoelectronic hardware for neuromorphic and in-memory computing.
AB - The ever-increasing demands for data processing and storage will require seamless monolithic co-integration of electronics and photonics. Phase-change materials are uniquely suited to fulfill this function due to their dual electro-optical sensitivity, nonvolatile retention properties, and fast switching dynamics. The extreme size disparity however between CMOS electronics and dielectric photonics inhibits the realization of efficient and compact electrically driven photonic switches, logic and routing elements. Here, the authors achieve an important milestone in harmonizing the two domains by demonstrating an electrically reconfigurable, ultra-compact and nonvolatile memory that is optically accessible. The platform relies on localized heat, generated within a plasmonic structure; this uniquely allows for both optical and electrical readout signals to be interlocked with the material state of the PCM while still ensuring that the writing operation is electrically decoupled. Importantly, by miniaturization and effective thermal engineering, the authors achieve unprecedented energy efficiency, opening up a path towards low-energy optoelectronic hardware for neuromorphic and in-memory computing.
KW - integrated opto-electronics
KW - mixed-mode PCM
KW - phase change photonics
UR - https://www.scopus.com/pages/publications/85128165895
U2 - 10.1002/advs.202200383
DO - 10.1002/advs.202200383
M3 - 文章
C2 - 35434939
AN - SCOPUS:85128165895
SN - 2198-3844
VL - 9
JO - Advanced Science
JF - Advanced Science
IS - 20
M1 - 2200383
ER -