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Metal to insulator transition for conducting polymers in plasmonic…
https://www.np.phy.cam.ac.uk/files/lsa24_enpom_pedot.pdf3 Jan 2024: Scale bar: 20 nm. d Dark-field scattering spectra for Au@PEDOT with d = 3 nm in air (N = 200), with histogram of coupled plasmon modeλc positions. ... A 633 nmlaser illuminates individual NPoMs for over 200 s per timescans at optical powers 6 μW to -
Accelerated molecular vibrational decay and suppressed electronic…
https://www.np.phy.cam.ac.uk/files/prb24_cars_npom.pdf2 May 2024: Therefore, we reduce the pulsedlaser intensity Il by 20-fold to 200 nW µm2 per beam (forpump, Stokes, and probe lasers; pulse energy 2.5 fJ), corre-. ... Laser intensity 200 nW µm2 per beam (pulse energy 2.5 fJ).Error bars represent standard deviation -
Extensive photochemical restructuring of molecule-metal surfaces…
https://www.np.phy.cam.ac.uk/files/natcomm24_bpdroomlight.pdf4 Mar 2024: 0.06040200. 600. 400. 200. 06040200. 0.2. 0.1. 0.0. 0. 0. 0. -
In situ electrochemical regeneration of nanogap hotspots for…
https://www.np.phy.cam.ac.uk/files/natcomm24_resers.pdf6 Mar 2024: Magnification ranged from 80,000–200,000x. SERS enhancement factor calculationThe SERS enhancement factor of MLagg-CB[5] was calculated based onthe SERS and Raman signal of CB[5] (Supplementary Fig. ... The Raman spectrum of a 2 mM CB[5]solution in -
Influence of Quadrupolar Molecular Transitions within Plasmonic…
https://www.np.phy.cam.ac.uk/files/acsnano24_betacarotene.pdf24 May 2024: photoexcited, it internally relaxes into the S1 statewithin 200 fs,46 which in turn decays to the ground statewithin several picoseconds.47,48 Upon excitation of the S2 state,fluorescence from -
Electrochemically Switchable Multimode Strong Coupling in Plasmonic…
https://www.np.phy.cam.ac.uk/files/nanolett23_echemmbstrongcoupling.pdf3 Jan 2024: Electrochemically Switchable Multimode Strong Coupling inPlasmonic NanocavitiesYanji Yang, Rohit Chikkaraddy, Qianqi Lin, Daniel D. A. Clarke, Daniel Wigger, Jeremy J. Baumberg,and Ortwin Hess. Cite This: https://doi.org/10.1021/acs.nanolett.3c03814
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