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PMID: 41885731 已发表 · ppublish 英语

Selective Enrichment of Fluorescent Nanodiamonds by Stimulated Recoil Forces.

ACS nano ·第 20 卷 ·第 13 期 ·2026-04-07

Saito Y, Horai T, Umekawa Y, Shimono R, Tomoi Y, Matsuda T, Makino Y, Minowa Y, Ishihara H, Ashida M

摘要

Detonation nanodiamonds containing silicon-vacancy (SiV) centers (SiV-DNDs) exhibit spectrally sharp optical transitions and are promising nanoscale emitters. After purification and oxidative postprocessing, SiV-DNDs are obtained with a mean particle diameter of ∼10 nm, a size scale at which single-color-center occupancy per particle may be expected. Yet, practical applications require selective enrichment from mixtures that also contain undoped nanodiamonds. Conventional separation methods lack sufficient selectivity, and resonant absorption-based optical sorting is fundamentally constrained by excited-state saturation, rendering it ineffective in the single-color-center regime. Building on our recent theoretical predictions that stimulated emission can generate a dissipative optical force beyond this limit, we demonstrate that the stimulated recoil force (SRF) provides a scalable mechanism for emission-line-selective manipulation of nanodiamonds in liquid. Using a glass capillary with counter-propagating pump beams and a manipulation beam resonant with SiV emission, we observe millimeter-scale downstream depletion and upstream enrichment of SiV-DNDs, while a spectrally distinct, off-resonant fluorescent nanodiamond population remains unchanged. The magnitude and spatial extent of the transport show that SRF overcomes Brownian diffusion and enables long-range, species-selective transport under realistic conditions. To identify the physical mechanism, we perform complementary glass-cell experiments under a well-defined focusing geometry and compare the observed enrichment with optical-force calculations based on density-matrix dynamics and Brownian-dynamics simulations. Qualitative agreement supports SRF as the dominant dissipative contribution responsible for the transport. These results demonstrate practical, emission-energy-selective optical sorting of fluorescent nanodiamonds and define design principles for extending this approach to capillaries, microfluidic systems, and other fluorescent nanomaterials.

关键词
SiV-centers in nanodiamonds detonation nanodiamonds nanodiamonds optical force optical sorting stimulated recoil force
文献信息
期刊
ACS nano
期刊简称
ACS Nano
ISSN
1936-086X
发表日期
2026-04-07
语言
英语
国家/地区
United States
NLM ID
101313589
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