TY - JOUR
T1 - Which method is more efficient on enhancing light absorption for silicon nanowires array based solar cells
T2 - Plasmonic metal nanoparticles or narrow-bandgap semiconductor quantum dots?
AU - Li, Hailong
AU - Yang, Shengyi
AU - Hu, Jinming
AU - Zhang, Zhenheng
AU - Tang, Peiyun
AU - Jiang, Yurong
AU - Tang, Libin
AU - Zou, Bingsuo
N1 - Publisher Copyright:
© 2022 Elsevier Ltd
PY - 2022/8/1
Y1 - 2022/8/1
N2 - Being the unique physical structure and excellent optoelectronic properties, silicon nanowires (Si-NWs) array is considered to be a key nanostructure to build low-cost and high-efficiency solar cells, showing excellent performance of photons capturing and anti-reflection. In this work, the light absorption enhancement of Si-NWs array based solar cells by filling plasmonic metal nanoparticles (NPs), such as Au, Ag and Al, and/or PbS quantum dots (QDs) in the gaps of Si-NWs or depositing on the tips of Si-NWs, are simulated by using finite-difference time-domain (FDTD) software, respectively. Based on the proposed geometry of periodic Si-NWs array, our simulation demonstrates that the light absorption in the long-wavelength region can be greatly enhanced by filling suitable metal NPs or PbS QDs to form a certain thickness layer or depositing metal NPs on the tips of Si-NWs, by making good use of the localized surface plasmons and scattering generated around metal NPs, or the high absorption of PbS QDs in near-infrared region. Also, our simulation is in agreement with experimental data reported in literatures. Therefore, our work provides a valuable theoretical basis for designing high-performance Si-NWs array based solar cells.
AB - Being the unique physical structure and excellent optoelectronic properties, silicon nanowires (Si-NWs) array is considered to be a key nanostructure to build low-cost and high-efficiency solar cells, showing excellent performance of photons capturing and anti-reflection. In this work, the light absorption enhancement of Si-NWs array based solar cells by filling plasmonic metal nanoparticles (NPs), such as Au, Ag and Al, and/or PbS quantum dots (QDs) in the gaps of Si-NWs or depositing on the tips of Si-NWs, are simulated by using finite-difference time-domain (FDTD) software, respectively. Based on the proposed geometry of periodic Si-NWs array, our simulation demonstrates that the light absorption in the long-wavelength region can be greatly enhanced by filling suitable metal NPs or PbS QDs to form a certain thickness layer or depositing metal NPs on the tips of Si-NWs, by making good use of the localized surface plasmons and scattering generated around metal NPs, or the high absorption of PbS QDs in near-infrared region. Also, our simulation is in agreement with experimental data reported in literatures. Therefore, our work provides a valuable theoretical basis for designing high-performance Si-NWs array based solar cells.
KW - Finite-difference time-domain (FDTD) software
KW - Metal nanoparticles (NPs)
KW - PbS colloidal Quantum dots (CQDs)
KW - Silicon nanowires (Si-NWs) array
KW - Ultimate efficiency
UR - http://www.scopus.com/inward/record.url?scp=85127118885&partnerID=8YFLogxK
U2 - 10.1016/j.mssp.2022.106661
DO - 10.1016/j.mssp.2022.106661
M3 - Article
AN - SCOPUS:85127118885
SN - 1369-8001
VL - 146
JO - Materials Science in Semiconductor Processing
JF - Materials Science in Semiconductor Processing
M1 - 106661
ER -