TY - GEN
T1 - Nanopattern multi-well avalanche selenium detector with picosecond time resolution
AU - Goldan, Amir H.
AU - Rowlands, John A.
AU - Lu, Ming
AU - Zhao, Wei
N1 - Publisher Copyright:
© 2014 IEEE.
PY - 2016/3/10
Y1 - 2016/3/10
N2 - For the first time, we propose using amorphous selenium (a-Se) as the photoconductive material for time-of-flight (TOF) detectors. The major drawback of a-Se is its poor time-resolution and low mobility due to shallow-traps, problems that must be circumvented for TOF applications. Thus, we propose a nanopattern multi-well a-Se detector to enable the utilization of both avalanche multiplication gain and unipolar time-differential (UTD) charge sensing in one device. Advantages of avalanche-mode a-Se are having photoconductive gain and band transport in extended states with the highest possible mobility and negligible trapping. Most importantly, UTD charge sensing enables operating the detector at its theoretical limit of charge diffusion. Our simulation results show that UTD charge sensing in avalanche-mode a-Se improves time-resolution by more than 3 orders-of-magnitude and proves very promising to achieve for the first time the ultimate goal of 10 ps time-resolution with a material that is low-cost and uniformly scalable to large-area.
AB - For the first time, we propose using amorphous selenium (a-Se) as the photoconductive material for time-of-flight (TOF) detectors. The major drawback of a-Se is its poor time-resolution and low mobility due to shallow-traps, problems that must be circumvented for TOF applications. Thus, we propose a nanopattern multi-well a-Se detector to enable the utilization of both avalanche multiplication gain and unipolar time-differential (UTD) charge sensing in one device. Advantages of avalanche-mode a-Se are having photoconductive gain and band transport in extended states with the highest possible mobility and negligible trapping. Most importantly, UTD charge sensing enables operating the detector at its theoretical limit of charge diffusion. Our simulation results show that UTD charge sensing in avalanche-mode a-Se improves time-resolution by more than 3 orders-of-magnitude and proves very promising to achieve for the first time the ultimate goal of 10 ps time-resolution with a material that is low-cost and uniformly scalable to large-area.
UR - https://www.scopus.com/pages/publications/84965025643
U2 - 10.1109/NSSMIC.2014.7431215
DO - 10.1109/NSSMIC.2014.7431215
M3 - Conference contribution
AN - SCOPUS:84965025643
T3 - 2014 IEEE Nuclear Science Symposium and Medical Imaging Conference, NSS/MIC 2014
BT - 2014 IEEE Nuclear Science Symposium and Medical Imaging Conference, NSS/MIC 2014
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - IEEE Nuclear Science Symposium and Medical Imaging Conference, NSS/MIC 2014
Y2 - 8 November 2014 through 15 November 2014
ER -