We want to discover novel principles of optical imaging by exploring the interface between physics, chemistry, chemical biology, engineering and data science.
The authors have derived an Einstein-coefficient-like equation relating spontaneous and stimulated Raman cross sections, which offers new insights to the molecular response and vacuum involvement in Raman. @TheMinLab@xgao97
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https://t.co/ZBa1JaPK16
We observed individual nanocarriers that cross the blood–brain barrier in one of our latest papers: Single-particle imaging of nanomedicine entering the brain
https://t.co/xHDNeNE3p6
Our work of supermultiplexed optical imaging and barcoding with engineered polyynes (DOI: 10.1038/nmeth.4578) was just released online on Nature Methods. We are honored to see it is featured!
https://t.co/nTjvgLFPlX
Our work published on PNAS (Metabolic activity induces membrane phase separation in endoplasmic reticulum PNAS 2017, 114(51):13394. doi: 10.1073/pnas.1712555114) has done particularly well in receiving online attentions and is now in the 99th percentile!
https://t.co/Zme1CsnRkv
Our work of super-multiplex vibrational imaging was reported by Nature Methods
•Nature Methods | Research Highlights Microscopy: Good vibrations for super-multiplexed imaging, Nature Methods 14, 552–553 (2017) doi:10.1038/nmeth.4319
Our work of super-multiplex vibrational imaging (Nature 2017,544(7651):465) was reported by Nature
•Nature| News and Views Microscopy: A larger palette for biological imaging, Nature 544, 423–424 (2017) doi:10.1038/544423a