Behzad Namvar,1 Jukka Viheriälä,1 Topi Uusitalo,1 Heikki Virtanen,1 Patrik Rajala,1 Sanna Ranta,1 Teemu Hakkarainen,1 Antti Tukiainen,1 Guilhem Almuneau,2 Mircea Guina1
1Tampere Univ. (Finland) 2Univ. de Toulouse (France)
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Scaling quantum computing while maintaining quantum coherence at cryogenic temperatures is still a challenging issue. It emphasizes the need for an optical link between the control processor in the cryogenic environments and memory units kept in room temperature to mitigate thermal noise-induced decoherence. This study examines the utilization of VCSELs as an optical link in cryogenic environments. The study explores microcavity-gain resonance conditions and their temperature dependency, develops electrical models considering limited thermionic emission, and analyzes internal thermal profiles during low-temperature operation. The research includes characterizing fabricated devices and addressing key factors, such as p-doped DBR, that limit energy-efficient performance.
Behzad Namvar,Jukka Viheriälä,Topi Uusitalo,Heikki Virtanen,Patrik Rajala,Sanna Ranta,Teemu Hakkarainen,Antti Tukiainen,Guilhem Almuneau, andMircea Guina
"Cryogenic optical interfacing for scalable quantum computing: analysis of VCSEL operation and thermal profiles as an optical Link", Proc. SPIE PC12880, Physics and Simulation of Optoelectronic Devices XXXII, PC1288006 (12 March 2024); https://doi.org/10.1117/12.3001360
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Behzad Namvar, Jukka Viheriälä, Topi Uusitalo, Heikki Virtanen, Patrik Rajala, Sanna Ranta, Teemu Hakkarainen, Antti Tukiainen, Guilhem Almuneau, Mircea Guina, "Cryogenic optical interfacing for scalable quantum computing: analysis of VCSEL operation and thermal profiles as an optical Link," Proc. SPIE PC12880, Physics and Simulation of Optoelectronic Devices XXXII, PC1288006 (12 March 2024); https://doi.org/10.1117/12.3001360