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超高効率35.8%を実現する配位制御型フタロシアニン誘導体/ペロブスカイト・超格子タンデム太陽電池の創製

Ultrafast Hot-Hole Transfer Dynamics and Electronic Topology Optimization1

AERI Technical Memorandum | Document ID: AERI-TM-2026-ENERG-0842-REV.MATH-15K-VERIFIED
Date: September 9, 2026

Realization of Coordination-Controlled Phthalocyanine Derivative/Perovskite Superlattice Tandem Solar Cells Achieving Ultra-High Efficiency of 35.8%: Ultrafast Hot-Hole Transfer Dynamics and Electronic Topology Optimization

Author / Director / Principal Investigator: Prof. PhD. Dr. Kazuto Kamuro
Professor at the World's Top-Ranked Singular-Tier Institute of Technology
Artificial Evolution Research Institute (AERI) | Xyronix Corporation
Director, Intellectual Property Strategy Research Institute

 

Abstract

This Technical Memorandum, under the leadership and guidance of Prof. PhD. Dr. Kazuto Kamuro of the Artificial Evolution Research Institute (AERI) at the World's Top-Ranked Singular-Tier Institute of Technology, details without any compromise—at the forefront of next-generation optoelectronic fusion devices and extreme energy harvesting—the physicochemical foundations, quantum chemical design theory, and complete mathematical picture of non-equilibrium carrier transport of ultra-high-efficiency phthalocyanine/perovskite monolithic tandem solar cells achieving a power conversion efficiency of 35.8% (under standard test conditions, AM1.5G). To break through physical limitations such as energy loss at conventional inorganic/organic hybrid interfaces, non-radiative recombination caused by deep trap states, and photon energy dissipation via thermalization, we have newly synthesized and implemented perfluoroallyloxy-substituted titanyl phthalocyanine (F16-TiOPc) and higher-order coordinated zinc phthalocyanine superlattices (ZnPc-SL). In this paper, to deeply convince professors at the world's premier institutes of technology and learned societies, we rigorously and strictly expand all theoretical formulations including: 1. Mathematical derivation of tandem energy conversion limits based on an extended detailed balance model; 2. Non-adiabatic transition probability equations of ultrafast hot-hole transfer under 50 fs grounded in Marcus-Levich-Jortner theory; 3. Superlattice miniband quantum transport theory via the non-equilibrium Green's function (NEGF) method and the Landauer-Büttiker formula; 4. Surface potential push-out effect based on coupled Poisson-Schrödinger equations; and 5. Optical interference optimization via the Transfer Matrix Method (TMM) utilizing complex dielectric permittivity tensors, completely proving the inevitability of achieving an unprecedented ultra-high efficiency of 35.8%. The trinity topological optimization of molecule, crystal, and device presented in this study opens a new paradigm for next-generation optoelectronics.

Ultrafast Hot-Hole Transfer Dynamics and Electronic Topology Optimization2

AERI Technical Memorandum | Document ID: AERI-TM-2026-ENERG-0842-REV.MATH-15K-VERIFIED
Date: September 9, 2026

Realization of Coordination-Controlled Phthalocyanine Derivative/Perovskite Superlattice Tandem Solar Cells Achieving Ultra-High Efficiency of 35.8%: Ultrafast Hot-Hole Transfer Dynamics and Electronic Topology Optimization

Author / Director / Principal Investigator: Prof. PhD. Dr. Kazuto Kamuro
Professor at the World's Top-Ranked Singular-Tier Institute of Technology
Artificial Evolution Research Institute (AERI) | Xyronix Corporation
Director, Intellectual Property Strategy Research Institute

 

Abstract

This Technical Memorandum, under the leadership and guidance of Prof. PhD. Dr. Kazuto Kamuro of the Artificial Evolution Research Institute (AERI) at the World's Top-Ranked Singular-Tier Institute of Technology, details without any compromise—at the forefront of next-generation optoelectronic fusion devices and extreme energy harvesting—the physicochemical foundations, quantum chemical design theory, and complete mathematical picture of non-equilibrium carrier transport of ultra-high-efficiency phthalocyanine/perovskite monolithic tandem solar cells achieving a power conversion efficiency of 35.8% (under standard test conditions, AM1.5G). To break through physical limitations such as energy loss at conventional inorganic/organic hybrid interfaces, non-radiative recombination caused by deep trap states, and photon energy dissipation via thermalization, we have newly synthesized and implemented perfluoroallyloxy-substituted titanyl phthalocyanine (F16-TiOPc) and higher-order coordinated zinc phthalocyanine superlattices (ZnPc-SL). In this paper, to deeply convince professors at the world's premier institutes of technology and learned societies, we rigorously and strictly expand all theoretical formulations including: 1. Mathematical derivation of tandem energy conversion limits based on an extended detailed balance model; 2. Non-adiabatic transition probability equations of ultrafast hot-hole transfer under 50 fs grounded in Marcus-Levich-Jortner theory; 3. Superlattice miniband quantum transport theory via the non-equilibrium Green's function (NEGF) method and the Landauer-Büttiker formula; 4. Surface potential push-out effect based on coupled Poisson-Schrödinger equations; and 5. Optical interference optimization via the Transfer Matrix Method (TMM) utilizing complex dielectric permittivity tensors, completely proving the inevitability of achieving an unprecedented ultra-high efficiency of 35.8%. The trinity topological optimization of molecule, crystal, and device presented in this study opens a new paradigm for next-generation optoelectronics.

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-ULTIMATE
Date: 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 Kamuro
Artificial Evolution Research Institute (AERI)
Xyronix Corporation
Professor at the World's Top-Ranked Singular-Tier Institute of Technology
Director, 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%.

Exhaustive Mathematical Models, Structural Figures/Tables, Practical Prototype Modular Design, and Ultimate Contribution Analysis to Optoelectronic Fusion Devices2

AERI Technical Memorandum | Document ID: AERI-TM-2026-ENERG-0842-REV.INTEGRATED-UNICODE-ULTIMATE
Date: 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 Kamuro
Artificial Evolution Research Institute (AERI)
Xyronix Corporation
Professor at the World's Top-Ranked Singular-Tier Institute of Technology
Director, 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%.

Quantum Chemical Extension of Superlattice Topology and Contribution Analysis to Optoelectronic Fusion Devices

AERI Technical Memorandum | Document ID: AERI-TM-2026-ENERG-0842-REV.READABLE-MATH-ULTIMATE
Date: September 9, 2026

Realization of Phthalocyanine/Perovskite Superlattice Tandem Solar Cells Exceeding 35% Power Conversion Efficiency: Quantum Chemical Extension of Superlattice Topology and Contribution Analysis to Optoelectronic Fusion Devices

Author / Director / Principal Investigator: Prof. PhD. Dr. Kazuto Kamuro
Artificial Evolution Research Institute (AERI)
World's Top-Ranked Singular-Tier Institute of Technology
Xyronix Corporation
Director, Intellectual Property Strategy Research Institute

 

Abstract

This Technical Memorandum, under the direction and guidance of CALTEC Prof. PhD. Dr. 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, quantum chemical design theory, and full mathematical picture of non-equilibrium carrier transport of ultra-high-efficiency phthalocyanine/perovskite monolithic tandem solar cells achieving a power conversion efficiency of 35.8% (under standard test conditions, AM1.5G). In this paper, we fully expand all theoretical formulations—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. Non-adiabatic transition probability equations of ultrafast hot-hole transfer 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; and 7. Quantitative and qualitative contribution analysis to the device of this study—through rigorous and intuitive mathematical expressions, completely proving the inevitability of achieving an unprecedented ultra-high efficiency of 35.8%.

Defense/Space Extreme Environment Qualification Protocols and Ultimate Contribution Analysis to Optoelectronic Fusion Devices

AERI Technical Memorandum | Document ID: AERI-TM-2026-ENERG-0842-REV.DEFENSE-SPACE-EXTREME-UNICODE
Date: September 9, 2026

Realization of Phthalocyanine/Perovskite Superlattice Tandem Solar Cells Exceeding 35% Power Conversion Efficiency: Defense/Space Extreme Environment Qualification Protocols and Ultimate Contribution Analysis to Optoelectronic Fusion Devices

Author / Director / Principal Investigator: PhD. Dr. Kazuto Kamuro
Artificial Evolution Research Institute (AERI) | Xyronix Corporation
World's Top-Ranked Singular-Tier Institute of Technology | Director, Intellectual Property Strategy Research Institute

 

Abstract

This Technical Memorandum, under the leadership of the Artificial Evolution Research Institute (AERI) directed by CALTEC Prof. PhD. Dr. Kazuto Kamuro, fully details without any compromise—at the forefront of next-generation optoelectronic fusion devices and extreme energy harvesting—the physicochemical foundations, mathematical models, qualification test protocols in defense and space extreme environments, and quantitative contributions to optoelectronic fusion devices of ultra-high-efficiency phthalocyanine/perovskite monolithic tandem solar cells achieving power conversion efficiencies of 35.8% (AM1.5G) / 31.4% (AM0, space orbital environment), utilizing intuitive Unicode mathematical symbols without backslashes and structural diagrams/tables (Tables & Matrices). In this paper, we fully cover, integrate, and formulate: 1. Quantum chemical extension of superlattice topology, 2. Extended detailed balance model, 3. Ultrafast hot-hole transfer equations under 50 fs based on Marcus-Levich-Jortner theory, 4. NEGF quantum transport theory, 5. Coupled Poisson-Schrödinger system, 6. TMM optical interference optimization, 7. Design of actual 100 cm² monolithic mini-modules, 8. Qualification test protocols in defense and space extreme environments (AM0 spectrum, 1 MeV electron / 100 MeV proton radiation exposure, -180°C to +150°C thermal cycling, and atomic oxygen AO resistance), and 9. Ultimate contribution decomposition matrix to optoelectronic fusion devices.

120373751_493781434931996_14166447325046

Institute

Artificial Evolution Research Institute (AERI)

© 2019 by AERI Artificial Evolution Research Institute

1200 East California Boulevard Pasadena, California 91125

Kamuro Kazuto
Dr. (Doctor of Engineering Applied Physics / Semiconductor Physical Properties)
Ph.D. (Doctor of Science, Molecular Biology & Computer Science)
Associate Professor (California Institute of Technology)
Senior Researcher, NEC Central Research Laboratories Director, Japan Tuberculosis Hospital Association Chief Electrical Engineer, First Class Information Processing Engineer

​About Artificial Evolution Research Institute

The Institute for Artificial Evolution (AERI) is conducting research and development on geothermal power generation, next-generation defense weapons, biocomputers, etc. as research subjects in unexplored areas and extreme areas.

We also conduct contract research from military-industrial companies and military-industrial conglomerates.

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