科研成果

2017
Liu YJ, Lu YQ, Yang XS, Zheng XL, Wen SH, Wang F, Vidal X, Zhao JB, Liu DM, Zhou ZG, et al. Amplified stimulated emission in upconversion nanoparticles for super-resolution nanoscopy. Nature [Internet]. 2017;543(7644):229-233. 访问链接Abstract
Lanthanide-doped glasses and crystals are attractive for laser applications because the metastable energy levels of the trivalent lanthanide ions facilitate the establishment of population inversion and amplified stimulated emission at relatively low pump power(1-3). At the nanometre scale, lanthanide-doped upconversion nanoparticles (UCNPs) can now be made with precisely controlled phase, dimension and doping level(4,5). When excited in the near-infrared, these UCNPs emit stable, bright visible luminescence at a variety of selectable wavelengths(6-9), with single-nanoparticle sensitivity(10-13), which makes them suitable for advanced luminescence microscopy applications. Here we show that UCNPs doped with high concentrations of thulium ions (Tm3+), excited at a wavelength of 980 nanometres, can readily establish a population inversion on their intermediate metastable H-3(4) level: the reduced inter-emitter distance at high Tm3+ doping concentration leads to intense cross-relaxation, inducing a photon-avalanche-like effect that rapidly populates the metastable H-3(4) level, resulting in population inversion relative to the H-3(6) ground level within a single nanoparticle. As a result, illumination by a laser at 808 nanometres, matching the upconversion band of the H-3(4)-> H-3(6) transition, can trigger amplified stimulated emission to discharge the H-3(4) intermediate level, so that the upconversion pathway to generate blue luminescence can be optically inhibited. We harness these properties to realize low-power super-resolution stimulated emission depletion (STED) microscopy and achieve nanometre-scale optical resolution (nanoscopy), imaging single UCNPs; the resolution is 28 nanometres, that is, 1/36th of the wavelength. These engineered nanocrystals offer saturation intensity two orders of magnitude lower than those of fluorescent probes currently employed in stimulated emission depletion microscopy, suggesting a new way of alleviating the square-root law that typically limits the resolution that can be practically achieved by such techniques.
Chen XZ, Liu ZH, Li RQ, Shan CY, Zeng ZP, Xue BX, Yuan WH, Mo C, Xi P, Wu CF, et al. Multicolor Super-resolution Fluorescence Microscopy with Blue and Carmine Small Photoblinking Polymer Dots. Acs Nano [Internet]. 2017;11:8084-8091. 访问链接
Chen XZ, Li RQ, Liu ZH, Sun K, Sun ZZ, Chen DN, Xu GX, Xi P, Wu CF, Sun YJ. Small Photoblinking Semiconductor Polymer Dots for Fluorescence Nanoscopy. Advanced Materials [Internet]. 2017;29. 访问链接
2016
Zhanghao K, Chen L, Yang XS, Wang MY, Jing ZL, Han HB, Zhang MQ, Jin DY, Gao JT, Xi P. Super-resolution dipole orientation mapping via polarization demodulation. Light-Science & Applications [Internet]. 2016;5. 访问链接
Zeng ZP, Xi P. Advances in three-dimensional super-resolution nanoscopy. Microscopy Research and Technique [Internet]. 2016;79:893-898. 访问链接
Yang X, Xie H, Alonas E, Liu Y, Chen X, Santangelo PJ, Ren Q, Xi P, Jin D. Mirror-enhanced super-resolution microscopy. Light Sci Appl [Internet]. 2016;5. 访问链接
Yu WT, Ji ZH, Dong DS, Yang XS, Xiao YF, Gong QH, Xi P, Shi KB. Super-resolution deep imaging with hollow Bessel beam STED microscopy. Laser & Photonics Reviews [Internet]. 2016;10:147-152. 访问链接
Yang XS, Zhanghao K, Wang HN, Liu YJ, Wang F, Zhang X, Shi KB, Gao JT, Jin DY, Xi P. Versatile Application of Fluorescent Quantum Dot Labels in Super resolution Fluorescence Microscopy. Acs Photonics [Internet]. 2016;3:1611-1618. 访问链接
Gao J, Yang X, Djekidel MN, Wang Y, Xi P, Zhang MQ. Developing bioimaging and quantitative methods to study 3D genome. Quantitative Biology. 2016;4:129-147.
Lal A, Shan CY, Xi P. Structured Illumination Microscopy Image Reconstruction Algorithm. Ieee Journal of Selected Topics in Quantum Electronics [Internet]. 2016;22. 访问链接
Chen XZ, Wei M, Zheng MM, Zhao JX, Hao HW, Chang L, Xi P, Sun YJ. Study of RNA Polymerase II Clustering inside Live-Cell Nuclei Using Bayesian Nanoscopy. Acs Nano [Internet]. 2016;10:2447-2454. 访问链接
Chen X, Zeng Z, Li R, Xue B, Xi P, Sun Y. Superior performance with sCMOS over EMCCD in super-resolution optical fluctuation imaging. J Biomed Opt [Internet]. 2016;21:66007. 访问链接
Chen X, Zong W, Li R, Zeng Z, Zhao J, Xi P, Chen L, Sun Y. Two-photon light-sheet nanoscopy by fluorescence fluctuation correlation analysis. Nanoscale [Internet]. 2016;8:9982-7. 访问链接
2015
Zhang X, Chen XZ, Zeng ZP, Zhang MS, Sun YJ, Xi P, Peng JX, Xu PY. Development of a Reversibly Switchable Fluorescent Protein for Super-Resolution Optical Fluctuation Imaging (SOFI). Acs Nano [Internet]. 2015;9:2659-2667. 访问链接
Zeng ZP, Chen XZ, Wang HN, Huang N, Shan CY, Zhang H, Teng JL, Xi P. Fast Super-Resolution Imaging with Ultra-High Labeling Density Achieved by Joint Tagging Super-Resolution Optical Fluctuation Imaging. Scientific Reports [Internet]. 2015;5. 访问链接
Lv PY, Xue YH, Liu H, Shi YP, Xi P, Lin H, Duan HL. Symmetric and Asymmetric Meniscus Collapse in Wetting Transition on Submerged Structured Surfaces. Langmuir [Internet]. 2015;31:1248-1254. 访问链接
Chen XZ, Xi P. Hundred-Thousand Light Holes Push Nanoscopy to go Parallel. Microscopy Research and Technique [Internet]. 2015;78:8-10. 访问链接
Chen X, Zeng Z, Wang H, Xi P. Three-dimensional multimodal sub-diffraction imaging with spinning-disk confocal microscopy using blinking/fluctuating probes. Nano Research. 2015;8:2251-2260.
2014
Wang HN, Sun HF, Wei H, Xi P, Nie SM, Ren QS. Biocompatible hyaluronic acid polymer-coated quantum dots for CD44(+) cancer cell-targeted imaging. Journal of Nanoparticle Research [Internet]. 2014;16. 访问链接
Xie H, Jin DY, Yu JJ, Peng T, Ding YC, Zhou CH, Xi P. Schlieren confocal microscopy for phase-relief imaging. Optics Letters [Internet]. 2014;39:1238-1241. 访问链接

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