Rui Duan, Yuan Wang, Bojian Shi, Yaqi Tang, Lin Wang, Yan Wang, Bei Xu, Junzi Li, Yichen He, Kailei Lu, Yanli Shi, Xiaoyan Zhou, Lin Zhang, Hongchang Deng, Tingchao He, Xuyong Yang, Rui Chen, Jianqi Qi, Huiyun Liu, Handong Sun
Liquid-state lasers are promising wavelength-agile, reconfigurable coherent light sources, but fluid gain media introduce Brownian motion, thermal transport, and refractive-index fluctuations that destabilize single-frequency emission. Here, we demonstrate that nonequilibrium fluid fluctuations can instead be harnessed to stabilize lasing through optofluidic locking. In anisotropic colloidal nanoplatelets (CNPs), a weak auxiliary continuous-wave optical field induces collective particle migration, reorientation, and accumulation via coupled optical forces and convective flow. The resulting self-organized gain landscape suppresses cavity fluctuations, improves output stability by nearly three orders of magnitude, and reduces the lasing threshold by over 75%. Integrated with high-gain CdSe/CdSeS/CdZnS core/graded-crown/graded-shell nanoplatelets and a Littman-like external cavity, this mechanism enables stable single-frequency lasing with a side-mode suppression ratio above 31 dB, a 0.051 nm linewidth, and 170-nm single-mode tunability across engineered CNP gain media. We further demonstrate applications in WS2 photoluminescence pumping and wavelength-tunable topological vertical-cavity lasing.