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Designing Semiconductor Nanowires for Efficient Photon Upconversion via Heterostructure Engineering
Mattias Jansson1, Fumitaro Ishikawa2, Weimin M Chen1
1Department of Physics, Chemistry and Biology, Linköping University, SE-58183 Linköping, Sweden.
ACS Nano
|July 25, 2022
Summary
Researchers enhanced energy upconversion efficiency in semiconductor nanowires (NWs) using core/shell heterostructures. This breakthrough enables efficient photon upconversion even under low excitation power, crucial for nano-optoelectronics.
Area of Science:
- Nanophotonics and Nano-optoelectronics
- Semiconductor Nanowire Heterostructures
- Optical Energy Conversion
Background:
- Achieving high energy upconversion efficiency in semiconductor nanowires (NWs) is critical for advanced nano-optoelectronic and nanophotonic devices.
- Efficient upconversion under low excitation power remains a significant challenge, limiting device dynamic range.
Purpose of the Study:
- To drastically enhance energy upconversion efficiency in NW heterostructures.
- To demonstrate efficient two-step two-photon absorption (TPA) via engineered band states.
- To provide design guidelines for high-efficiency photon upconversion.
Main Methods:
- Fabrication of radial GaAs(P)/GaNAs(P) core/shell NW heterostructures.
- Design of heterostructures to facilitate a real intermediate TPA step with long carrier lifetime.
- Engineering electric-field distribution for maximized light absorption within the NWs.
Main Results:
- Achieved a 500-fold increase in upconversion efficiency compared to constituent materials.
- Demonstrated high efficiency under low excitation power (100 mW/cm², comparable to 1 sun illumination).
- Further improved efficiency by 8 times through electric-field engineering.
Conclusions:
- Core/shell NW heterostructures are highly effective for efficient photon upconversion.
- The demonstrated upconversion efficiency is among the highest reported for semiconductor nanostructures.
- The study provides valuable design principles for future high-performance upconversion devices.

