Organophosphorus ligand-coordinated ZnO cathode buffer layers in organic solar cells—Work function reduction and performance enhancement

A Anoop C. Sathyadevan Nair (Department of Physics, National Institute of Technology Calicut 1 , Kerala 673601,) A Anju Rajan (Department of Physics, National Institute of Technology Calicut 1 , Kerala 673601,) K K. P. Adarsh Raj (Department of Physics, National Institute of Technology Calicut 1 , Kerala 673601,) D Dipangkor Basumatary (Department of Physics, National Institute of Technology Calicut 1 , Kerala 673601,) K Kavya Murali (Department of Chemistry, National Institute of Technology Calicut 2 , Kerala 673601,) P Pattiyil Parameswaran (Department of Chemistry, National Institute of Technology Calicut 2 , Kerala 673601,) C C. S. Suchand Sangeeth (Department of Physics, National Institute of Technology Calicut 1 , Kerala 673601,) R Raghu Chatanathodi (Department of Physics, National Institute of Technology Calicut 1 , Kerala 673601,) V Vari Sivaji Reddy (Department of Physics, National Institute of Technology Calicut 1 , Kerala 673601,)

Abstract

Functionalization of the ZnO cathode buffer layer (CBL) has been considered as a promising strategy to improve the performance of organic solar cells (OSCs). In the present study, three tricoordinated organophosphorus ligands, triphenylphosphine (TPP), methyldiphenylphosphine (MDPP) and dimethylphenylphosphine (DMPP), were successfully employed to functionalize ZnO CBL in OSCs based on the PTB7:PC70BM active layer. The effect of substituents on the device performance was systematically studied. Density functional theory calculations confirmed the formation of a strong Zn–P bond with adsorption energies of −1.85, −1.97, and −2.09 eV for TPP, MDPP, and DMPP, respectively. The electron transfer from the molecules to ZnO has significantly reduced the work function (WF) of CBL. The ZnO/DMPP CBL exhibited the lowest WF, which was attributed to the positive inductive effect of methyl groups. The OSCs with functionalized ZnO CBL exhibited improved exciton dissociation and charge collection efficiencies due to reduced bimolecular and trap-assisted recombination, as revealed by intensity-dependent J–V and impedance measurements. As a result, the devices fabricated with the functionalized ZnO as CBL exhibited superior photovoltaic performance, with ZnO/DMPP showing the highest power conversion efficiency of 7.24%, followed by ZnO/MDPP (6.91%) and ZnO/TPP (6.73%) compared to the reference device (6.29%).

Article Details

Volume / Issue Vol. 128, Issue 12
Published March 23, 2026
ISSN 0003-6951
Publisher American Institute of Physics

Journal Info

Applied Physics Letters

American Institute of Physics

ISSN: 0003-6951 Physical Sciences

Authors (9)

A

Anoop C. Sathyadevan Nair

Department of Physics, National Institute of Technology Calicut 1 , Kerala 673601,

A

Anju Rajan

Department of Physics, National Institute of Technology Calicut 1 , Kerala 673601,

K

K. P. Adarsh Raj

Department of Physics, National Institute of Technology Calicut 1 , Kerala 673601,

D

Dipangkor Basumatary

Department of Physics, National Institute of Technology Calicut 1 , Kerala 673601,

K

Kavya Murali

Department of Chemistry, National Institute of Technology Calicut 2 , Kerala 673601,

P

Pattiyil Parameswaran

Department of Chemistry, National Institute of Technology Calicut 2 , Kerala 673601,

C

C. S. Suchand Sangeeth

Department of Physics, National Institute of Technology Calicut 1 , Kerala 673601,

R

Raghu Chatanathodi

Department of Physics, National Institute of Technology Calicut 1 , Kerala 673601,

V

Vari Sivaji Reddy

Department of Physics, National Institute of Technology Calicut 1 , Kerala 673601,