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加入复旦大学后

2026年

0.5. Deep Learning-Augmented Stimulated Raman Imaging for Cell-Type-Specific Metabolic Profiling in Live Neuronal Cocultures. [PDF]

Lin, L.-E., Bi, X., Colazo, A., Wang, H., & Wei, L.* Chemical & Biomedical Imaging 2026. Published online May 28, 2026.

TOC graphic showing SRS imaging, RCNN reconstruction, 3D U-Net segmentation, and metabolic analysis in mixed neuronal cultures

0.4. Toward accurate predictions of bond-selective fluorescence spectra.

Kocheril P.A., Leighton R. E., Naji N., Lee D., Wang H., Du J., & Lu Wei.* Journal of Chemical Physics 2026, 164, 130901.

0.3. Far-field single-molecule vibrational spectroscopy and imaging. [PDF]

Kocheril P.A., Wang H., Leighton R. E., Lee D, Naji N., Leighton R. E., Min W., & Lu Wei.* Chemical Science 2026, 17, 5297-5316.

2025年

0.2. Single-molecule vibrational thermometry. [PDF]

Kocheril P.A., Lee D., Naji N., Chadha R. S., Leighton R. E., Wang H., & Lu Wei.* The Journal of Physical Chemistry B 2025, 129(34), 8788-8797.

0.1. Two-dimensional bond-selective fluorescence spectroscopy: violations of the resonance condition, vibrational cooling rate dispersion, and super-multiplex imaging. [PDF]

Kocheril, P. A., Du J., Wang H., Leighton R. E., Lee D., Yang Z., Naji N., Colazo A., & Lu Wei * Chemical Science 2025, 16, 14905-14918.

加入复旦大学前

30. Wide-field bond-selective fluorescence imaging: from single-molecule to cellular imaging beyond video rate. [PDF]

Lee, D., Wang, H., Kocheril, P. A., Bi, X., Naji, N., & Wei, L.* Optica 2025, 12(2), 148-157.

2024年

29. Room-temperature single-molecule infrared imaging and spectroscopy through bond‐selective fluorescence. [PDF]

Wang, H., Kocheril, P. A., Yang, Z., Lee, D., Naji, N., Du, J., Lin, L. & Wei, L.* Angewandte Chemie International Edition 2024, 63(52), e202413647.

28. Nitrile vibrational lifetimes as probes of local electric fields. [PDF]

Kocheril, P. A., Wang, H., Lee, D., Naji, N., & Wei, L.* The Journal of Physical Chemistry Letters 2024, 15(19), 5306-5314.

Year 2023

27. Bond-selective fluorescence imaging with single-molecule sensitivity. [PDF]

Wang, H.,# Lee, D.,# Cao, Y., Bi, X., Du, J., Miao, K., & Wei, L.* Nature Photonics 2023, 17(10), 846-855.
相关报道:SciTechDaily, Photonics Spectra, Caltech News, and Technology Networks.

26. Toward the next frontiers of vibrational bioimaging. [PDF]

Wang, H., Lee, D., & Wei, L.* Chemical & Biomedical Imaging 2023, 1(1), 3-17.

25. Inducing trained immunity in pro-metastatic macrophages to control tumor metastasis.

Ding, C.,# Shrestha, R.,# Zhu, X., Geller, A.E., Wu, S., Woeste, M.R., Li, W., Wang, H., Yuan, F., Xu, R., Chariker, J.H., Hu, X., Li, H., Tieri, D., Zhang H.G., Rouchka, E. C., Mitchell, R., Siskind, L. J., Zhang, X., Xu, X. G., McMasters, K. M., Yu, Y., & Yan, J.* Nature Immunology 2023, 24(2), 239-254.

2022年

24. Principle and applications of peak force infrared microscopy. [PDF]

Wang, L.,# Wang, H.,# & Xu, X. G.* Chemical Society Reviews 2022, 51(13), 5268-5286.

23. Bringing vibrational imaging to chemical biology with molecular probes. [PDF]

Du, J., Wang, H., & Wei, L.* ACS Chemical Biology 2022, 17(7), 1621–1637.

22. Super-resolution mid-infrared spectro-microscopy of biological applications through tapping mode and peak force tapping mode atomic force microscope. [PDF]



Wang, H.,# Xie, Q.,# & Xu, X. G.* Advanced Drug Delivery Reviews 2022, 180, 114080.

21. Dual-frequency peak force photothermal microscopy for simultaneously spatial mapping chemical distributions and energy dissipation.

Xie, Q., Wang, H., & Xu, X. G.* The Journal of Physical Chemistry C 2022, 126(19), 8393-8399.

2021年

Wang, H., Xie, Q., Zhang, Y., & Xu, X. G.* The Journal of Physical Chemistry C 2021, 125(15), 8333-8338.

19. Toward photoswitchable electronic pre-resonance stimulated Raman probes.

Lee, D., Qian, C., Wang, H., Li, L., Miao, K., Du, J., Shcherbakova, D. M., Verkhusha, V. V., Wang, L. V., & Wei, L.* The Journal of Chemical Physics 2021, 154(13), 135102.

Wang, H., González-Fialkowski, J. M., Li, W., Xie, Q., Yu, Y., & Xu, X. G.* Analytical Chemistry 2021, 93(7), 3567-3575.

17. Geometry‐directed self‐assembly of polymeric molecular frameworks.

Yan, X. Y.,# Guo, Q. Y.,# Lin, Z., Liu, X. Y., Yuan, J., Wang, J., Wang, H., Liu, Y., Su, Z., Liu, T., Huang, J., Zhang, R., Wang, Y., Huang, M., Zhang, W., & Cheng, S. Z.* Angewandte Chemie International Edition 2021, 133(4), 2052-2057.

2020年

16. Probing mid-infrared phonon polaritons in the aqueous phase. [PDF]

Wang, H., Janzen, E., Wang, L., Edgar, J. H., & Xu, X. G.* Nano Letters 2020, 20(5), 3986-3991.

15. Total internal reflection peak force infrared microscopy. [PDF]

Wang, H., Wang, L., Janzen, E., Edgar, J. H., & Xu, X. G.* Analytical Chemistry 2020, 93(2), 731-736.

14. Simultaneous nanoscale imaging of chemical and architectural heterogeneity on yeast cell wall particles. [PDF]

Li, W.,# Wang, H.,# Xu, X. G.,* & Yu, Y.* Langmuir 2020, 36(22), 6169-6177.

13. Three-dimensional near-field analysis through peak force scattering-type near-field optical microscopy. [PDF]

Wang, H., Li, J., Edgar, J. H., & Xu, X. G.* Nanoscale 2020, 12(3), 1817-1825.

12. Peak force visible microscopy. [PDF]

Wang, H., Wang, L., Shang, Y., Tafti, S. Y., Cao, W., Ning, Z., Zhang, X. F., & Xu, X. G.* Soft Matter 2020, 16(36), 8372-8379.

11. Macrophage activation on “phagocytic synapse” arrays: Spacing of nanoclustered ligands directs TLR1/2 signaling with an intrinsic limit.

Li, M., Wang, H., Li, W., Xu, X. G., & Yu, Y.* Science Advances 2020, 6(49), eabc8482.

10. Peak force infrared–kelvin probe force microscopy.

Jakob, D. S., Wang, H., Zeng, G., Otzen, D. E., Yan, Y., & Xu, X. G.* Angewandte Chemie International Edition 2020, 132(37), 16217-16224.

9. Pulsed force Kelvin probe force microscopy. [PDF]

Jakob, D. S., Wang, H., & Xu, X. G.* ACS Nano 2020, 14(4), 4839-4848.

8. Revealing phonon polaritons in hexagonal boron nitride by multipulse peak force infrared microscopy.

Wang, L., Wagner, M., Wang, H., Pau‐Sanchez, S., Li, J., Edgar, J. H., & Xu, X. G.* Advanced Optical Materials 2020, 8(5), 1901084.

2019年

7. Generalized heterodyne configurations for photoinduced force microscopy.

Wang, L., Jakob, D. S., Wang, H., Apostolos, A., Pires, M. M., & Xu, X. G.* Analytical Chemistry 2019, 91(20), 13251-13259.

6. Spectro-mechanical characterizations of kerogen heterogeneity and mechanical properties of source rocks at 6 nm spatial resolution.

Jakob, D. S., Wang, L., Wang, H., & Xu, X. G.* Analytical Chemistry 2019, 91(14), 8883-8890.

2018年

5. Tomographic and multimodal scattering-type scanning near-field optical microscopy with peak force tapping mode. [PDF]

Wang, H., Wang, L., Jakob, D. S., & Xu, X. G.* Nature Communications 2018, 9(1), 2005.

4. Direct measurement of photoinduced force for nanoscale infrared spectroscopy and chemical-sensitive imaging.

Wang, L., Wang, H., Vezenov, D., & Xu, X. G.* The Journal of Physical Chemistry C 2018, 122(41), 23808-23813.

2017年

3. Nanoscale simultaneous chemical and mechanical imaging via peak force infrared microscopy. [PDF]

Wang, L., Wang, H., Wagner, M., Yan, Y., Jakob, D. S., & Xu, X. G.* Science Advances 2017, 3(6), e1700255.

2. Mapping three-dimensional near-field responses with reconstruction scattering-type scanning near-field optical microscopy. [PDF]

Wang, H., Wang, L., Jakob, D. S., & Xu, X. G.* (2017). AIP Advances 2017, 7(5), 055118.

2016年

1. Scattering-type scanning near-field optical microscopy with low-repetition-rate pulsed light source through phase-domain sampling. [PDF]

Wang, H., Wang, L., & Xu, X. G.* Nature Communications 2016, 7(1), 13212.

0. Probing electron‐transfer and ion‐transfer coupling processes at liquid/liquid interfaces with pipette electrodes.

Zhang, X., Wang, H., Morris, C., Gu, C., Li, M., Baker, L., & Shao, Y.* ChemElectroChem 2016, 3(12), 2153-2159.