Jiangang Ma, Dan Zhou, Zhentian Xu, Bin Hu, Shuhua Wang, Wei Ding, Jingyun Huang, Jun Mao, Haitao Xu, Ruizhi Lv, Lie Chen
Organic solar cells (OSCs) hold significant promise for low-cost, lightweight, and flexible photovoltaic (PV) devices. However, thicker cathode interfacial layers (CILs) increase charge-transport resistance and recombination losses, reducing power conversion efficiency (PCE). Therefore, developing thickness-insensitive CILs with tailored electronic properties is crucial, and n-type self-doped CILs have emerged as a promising approach to enhance charge extraction, reduce interface losses, and achieve thickness-insensitive OSCs. Building on the operation principles of OSCs, n-type self-doping mechanisms surpass conventional CILs due to the enhanced charge transfer (CT) efficiency, optimized energy-level alignment, and superior interfacial stability. Subsequently, n-type self-doped small-molecule and polymer CILs are systematically classified, and key optimization strategies (molecular design, doping concentration control, interfacial engineering) are highlighted to mitigate thickness-induced efficiency loss. Finally, this review outlines OSC challenges (scalable manufacturing, stability, integration with nonfullerene acceptors) and surveys n-type self-doped CILs that overcome thickness limits, underscoring their large-scale PV potential.