4.8 Article

Chiral Photomelting of DNA-Nanocrystal Assemblies Utilizing Plasmonic Photoheating

期刊

NANO LETTERS
卷 21, 期 17, 页码 7298-7308

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.1c02479

关键词

Chiral plasmonics; chiral nanocrystals; bioassembly; photochemistry; circular dichroism; photothermal effect; heat generation; DNA melting

资金

  1. United States-Israel Binational Science Foundation (BSF) [2018050]
  2. Nanoscale & Quantum Phenomena Institute at Ohio University
  3. Xunta de Galicia (Centro singular de investigacion de Galicia accreditation 2019-2022) [ED431G 2019/06, IN607A 2018/5]
  4. European Union (European Regional Development Fund -ERDF)
  5. National Natural Science Foundation of China [12050410252]
  6. Spanish Ministerio de Economia y Competitividad [PID2020-118282RA-I00]
  7. National Key Research and Development Program of China [2019YFB2203400]
  8. 111 Project [B20030]
  9. Ministerio de Economia y Competitividad de Espana [CTM2017-84050-R, PID2020-113704RB-I00]
  10. European Union-ERDF (Interreg V-A -Spain-Portugal) [IBEROS_1_E, 0712_ACUINANO_1_E, 0624_2IQBIONEURO_6_E]
  11. ERC consolidator Grant DNA functional lattices [818635]
  12. Volkswagen Foundation
  13. European Union-ERDF (Interreg Atlantic Area NANOCULTURE) [1.102.531]
  14. European Research Council (ERC) [818635] Funding Source: European Research Council (ERC)

向作者/读者索取更多资源

The study demonstrates that chiral light can control chiral plasmonic photomelting by using a chiral DNA-assembled nanorod pair as a model system. The nonlinear chiroptical response of the plasmonic system is attributed to the chiral photothermal effect resulting in selective melting of DNA linker strands. The proposed mechanism can be used to develop chiral photoresponsive systems controllable with circularly polarized light.
Chiral plasmonic nanostructures exhibit anomalously strong chiroptical signals and offer the possibility to realize asymmetric photophysical and photochemical processes controlled by circularly polarized light. Here, we use a chiral DNA-assembled nanorod pair as a model system for chiral plasmonic photomelting. We show that both the enantiomeric excess and consequent circular dichroism can be controlled with chiral light. The nonlinear chiroptical response of our plasmonic system results from the chiral photothermal effect leading to selective melting of the DNA linker strands. Our study describes both the singlecomplex and collective heating regimes, which should be treated with different models. The chiral asymmetry factors of the calculated photothermal and photomelting effects exceed the values typical for the chiral molecular photochemistry at least 10-fold. Our proposed mechanism can be used to develop chiral photoresponsive systems controllable with circularly polarized light.

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