Interlayer coupling driven by polarization and stacking: A mechanism for tailoring optoelectronic properties in CuInP2S6/AsSBr heterostructures
Abstract
Two-dimensional (2D) van der Waals (vdW) ferroelectric heterostructures serve as an ideal platform for tunable optoelectronic devices, yet the precise regulation mechanism of interlayer coupling on their performance remains unclear. Here, a developed method to systematically investigate the interlayer coupling in CuInP2S6/AsSBr (CIPS/ASB) heterostructures based on first-principles calculations and theoretical calculations is proposed. The interlayer coupling constant K and interlayer coupling strength t are primarily driven by enhanced pz-orbital overlap, and the heterostructures with an S–S interface exhibit stronger coupling, K = ∼23 × 1019 N/m3 and t = ∼0.7 eV, than those with an S–Br interface, K = ∼15 × 1019 N/m3 and t = ∼0.5 eV. We find the tunable coupling by strain governs a spectrum of functional responses: it dictates band alignment transitions between type-I and type-II under strain at ∼4%, modulates interlayer vibrational modes at ultralow frequencies ∼28 cm−1, and switches semiconducting behavior between n-type and p-type to govern the electronic band structure and charge transfer dynamics of heterostructures. Crucially, optimized interlayer coupling in the CIPS(u)/ASB(d) configuration yields exceptional transport properties, achieving a hole mobility of 2990 cm2/V s. Consequently, power conversion efficiency is maximized at 9.25%, demonstrating that polarization- and stacking-engineered interlayer coupling provides a deterministic route to tailor optoelectronic performance. The calculations are consistent with the available evidence, implying that the proposed model could be a general approach to deal with interlayer coupling for designing high performance 2D vdW heterostructures.
Article Details
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (7)
Yan He
Ziqing Huang
College of Science, Guangdong University of Petrochemical Technology 1 , Maoming 525000,
Xiaodong Yang
State Key Laboratory of Chemo and Biosensing, College of Chemistry and Chemical Engineering
Huakai Xu
College of Science, Guangdong University of Petrochemical Technology 1 , Maoming 525000,
Xingyuan Chen
Zhijian Huang
Gang Ouyang
Key Laboratory of Low-Dimensional Quantum Structures and Quantum Control of Ministry of Education, School of Physics and Electronics, Hunan Normal University 3 , Changsha 410081,