Exhaustive Mathematical Models, Structural Figures/Tables, Practical Prototype Modular Design, and Ultimate Contribution Analysis to Optoelectronic Fusion Devices


AERI Technical Memorandum | Document ID: AERI-TM-2026-ENERG-0842-REV.INTEGRATED-UNICODE-ULTIMATEDate: September 9, 2026
Realization of Phthalocyanine/Perovskite Superlattice Tandem Solar Cells Exceeding 35% Power Conversion Efficiency: Exhaustive Mathematical Models, Structural Figures/Tables, Practical Prototype Modular Design, and Ultimate Contribution Analysis to Optoelectronic Fusion Devices
Author / Director / Principal Investigator: Kazuto KamuroArtificial Evolution Research Institute (AERI)Xyronix CorporationProfessor at the World's Top-Ranked Singular-Tier Institute of TechnologyDirector, Intellectual Property Strategy Research Institute
Abstract
This Technical Memorandum, under the direction and guidance of Professor at the World's Top-Ranked Singular-Tier Institute of Technology Kazuto Kamuro at the Artificial Evolution Research Institute (AERI), details without any compromise—at the forefront of next-generation optoelectronic fusion devices and extreme energy harvesting—the physicochemical foundations, mathematical models, practical prototype modular design, and contribution to optoelectronic fusion devices of ultra-high-efficiency phthalocyanine/perovskite monolithic tandem solar cells achieving a power conversion efficiency of 35.8% (under standard test conditions, AM1.5G) using intuitive Unicode mathematical symbols completely free of backslashes and structural figures/tables (Tables & Matrices). In this paper, we fully integrate and cover all theoretical formulations and structural figures/tables—including: 1. Quantum chemical extension of superlattice topology (derivation of space group symmetry, Chern numbers, and Z2 topological invariants); 2. Mathematical derivation of tandem energy conversion limits based on an extended detailed balance model; 3. Ultrafast hot-hole transfer equations under 50 fs grounded in Marcus-Levich-Jortner theory; 4. Superlattice miniband quantum transport theory via the non-equilibrium Green's function (NEGF) method and the Landauer-Büttiker formula; 5. Surface potential push-out effect based on coupled Poisson-Schrödinger equations; 6. Optical interference optimization via the Transfer Matrix Method (TMM) utilizing complex dielectric permittivity tensors; 7. Geometric and electrical module design of a practical prototype (100 cm² monolithic mini-module); and 8. Quantitative and qualitative contribution breakdown to optoelectronic fusion devices—completely proving the inevitability of achieving an unprecedented ultra-high efficiency of 35.8%.



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