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Silicon Metal-oxide-semiconductor Quantum Dots for Single-electron Pumping
Published on: June 3, 2015
Monolithic Integration of InAs Quantum Dot Lasers with Waveguide Photodetector on CMOS-Compatible (001) Silicon
Wenkang Zhan1,2, Chao Shen1,2, Lizhi Wang1,2
1State Key Laboratory of Optoelectronic Materials and Devices, Institute of Semiconductors, Chinese Academy of Sciences, Beijing 100083, China.
Abstract:
Silicon photonics requires CMOS-compatible, on-chip, efficient laser diodes (LDs) and low-noise photodetectors (PDs). Here, we demonstrate the monolithic integration of InAs QD LDs and waveguide PDs (WPDs) on CMOS-compatible (001) silicon by employing an identical epitaxial structure. The device exhibits bias-selective operation with both components isolated by XeF2-assisted focused ion beam trenching, a strategy ideal for LDs and PDs that require precise positioning yet occupy a minimal package footprint. The LD exhibits a low threshold current density of 170 A/cm2 and a single-facet continuous-wave output power of 48 mW, while the WPD shows a low dark current density of 4.9 × 10-5 A/cm2 at -1 V and a broad O-band spectral response. The integrated LD-WPD system shows a clear correlation between LD output power and WPD photocurrent with an estimated responsivity of 0.118 A/W. Our results demonstrate the feasibility of on-chip power monitoring, paving the way for compact, reliable, and high-density photonic integration.
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