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  2. Accessing Plasmonic Hotspots Using Nanoparticle-on-Foil Constructs

    https://www.np.phy.cam.ac.uk/files/acsphotonics21_npof_d.pdf
    23 Aug 2021: While the thinnest metalsheets have reached t 3 nm,2123 it has been possible usingTMD or molecular spacers to routinely achieve d < 1 nm gaps.24. ... J. Plasmonics in Atomically Thin Crystalline SilverFilms. ACS Nano 2019, 13 (7), 77717779.(24) Dias, E.
  3. Plasmon-Induced Trap State Emission from Single Quantum Dots

    https://www.np.phy.cam.ac.uk/sites/www.np.phy.cam.ac.uk/files/documents/PRL21_QDinNPoM.pdf
    23 Aug 2021: to be distinguished. [24] The large surface:volume ratio ofQDs can allow dense surface traps to emit as brightly as theband-edge excitons [22,25,26].While trap emission was initially ... Am.Chem. Soc. 134, 3804 (2012). [24] L. Biadala, B. Siebers, Y.
  4. Mechanistic study of an immobilized molecular electrocatalyst by in…

    https://www.np.phy.cam.ac.uk/files/documents/NatCatalysis21_bisNiS.pdf
    23 Aug 2021: Electrode designs such as confined environments22 and layered geometries23,24 advance catalysis by enhancing nanoscale mass transport and elec-trode dynamics compared to conventional electrodes. ... ACS Sustain. Chem. Eng. 5, 4771–4777 (2017). 24. Yang,
  5. Mechanistic study of an immobilized molecular electrocatalyst by in…

    https://www.np.phy.cam.ac.uk/sites/www.np.phy.cam.ac.uk/files/documents/NatCatalysis21_bisNiS.pdf
    23 Aug 2021: Electrode designs such as confined environments22 and layered geometries23,24 advance catalysis by enhancing nanoscale mass transport and elec-trode dynamics compared to conventional electrodes. ... ACS Sustain. Chem. Eng. 5, 4771–4777 (2017). 24. Yang,
  6. Mark Stockman: Evangelist for Plasmonics

    https://www.np.phy.cam.ac.uk/sites/www.np.phy.cam.ac.uk/files/documents/ACSphotonics21_Stockman.pdf
    23 Aug 2021: For instance, the selection rules ofemitters are completely changed in such nanogaps.24,25.
  7. Large-scale fabrication of structurally coloured cellulose…

    https://www.np.phy.cam.ac.uk/files/naturemat21_r2rcellulosev.pdf
    12 Nov 2021: d at. 60. C in. 20. min. 2.24 4.36 6.44. a b. ... J. Pulp Pap. Sci. 24, 146–149 (1998). 21. Gicquel, E., Bras, J., Rey, C. &
  8. Molecular Screening for Terahertz Detection with…

    https://www.np.phy.cam.ac.uk/files/physrevx21_thzmolecules.pdf
    22 Nov 2021: accessing vibrational spectroscopic properties in molecular-dynamics calculations [22,23], including methods specifi-cally for SERS applications [24]. ... 0.9–5.4 THz) and600–800 cm1 (18–24 THz), where transitions are moredense—and apply peak
  9. Plasmon-Induced Trap State Emission from Single Quantum Dots

    https://www.np.phy.cam.ac.uk/files/documents/PRL21_QDinNPoM.pdf
    23 Aug 2021: to be distinguished. [24] The large surface:volume ratio ofQDs can allow dense surface traps to emit as brightly as theband-edge excitons [22,25,26].While trap emission was initially ... Am.Chem. Soc. 134, 3804 (2012). [24] L. Biadala, B. Siebers, Y.
  10. Nanoparticle surfactants for kinetically arrested photoactive…

    https://www.np.phy.cam.ac.uk/files/naturenano21_cbqdnp.pdf
    21 Oct 2021: 5)24. Stable colloids of 1:CB[7] (several weeks) are observed when the CB[7]:1 ratio NCB[7]/N1 = χ < 18 (where NCB[7] is the number of ... 5c and Supplementary Figs. 24–39). On the removal of pump light, the system is switched from an
  11. Interfering Plasmons in Coupled Nanoresonators to Boost Light…

    https://www.np.phy.cam.ac.uk/files/documents/NanoLett21_NPoR.pdf
    23 Aug 2021: Nat. Commun. 2019, 10, 4476.(24) Rodríguez-Cantó, P. J.; Martínez-Marco, M.; Rodríguez-Fortuño, F.

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