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《Nanolasers grown on silicon.2016.315》.pdf
ARTICLES
PUBLISHED ONLINE: 6 FEBRUARY 2011 | DOI: 10.1038/NPHOTON.2010.315
Nanolasers grown on silicon
Roger Chen, Thai-Truong D. Tran, Kar Wei Ng, Wai Son Ko, Linus C. Chuang, Forrest G. Sedgwick
and Connie Chang-Hasnain*
The integration of optical interconnects with silicon-based electronics can address the growing limitations facing chip-scale
data transport as microprocessors become progressively faster. However, until now, material lattice mismatch and
incompatible growth temperatures have fundamentally limited monolithic integration of lasers onto silicon substrates.
Here, we use a novel growth scheme to overcome this roadblock and directly grow on-chip InGaAs nanopillar lasers,
demonstrating the potency of bottom-up nano-optoelectronic integration. Unique helically propagating cavity modes are
used to strongly confine light within subwavelength nanopillars despite the low refractive index contrast between InGaAs
and silicon. These modes therefore provide an avenue for engineering on-chip nanophotonic devices such as lasers.
Nanopillar lasers are as-grown on silicon, offer tiny footprints and scalability, and are thus particularly suited to high-
density optoelectronics. They may ultimately form the basis of future monolithic light sources needed to bridge the
existing gap between photonic and electronic circuits.
ince the first laser demonstrated that stimulated emission pro- We also show a novel helically propagating mode cavity that
cesses in an optical medium can implement a powerful, coher- offers a unique feedback mechanism to enable on-chip laser oscil-
S 1, the field of photonics has witnessed an ´
ent light source
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