4.6 Article

Quantitative Measurement of the Near-Field Enhancement of Nanostructures by Two-Photon Polymerization

期刊

LANGMUIR
卷 28, 期 24, 页码 9041-9046

出版社

AMER CHEMICAL SOC
DOI: 10.1021/la300219w

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资金

  1. JST
  2. DFG [SPP 1327]
  3. Ministry of Education, Culture, Sports, Science, and Technology of Japan: KAKENHI [19049001, 23225006]
  4. Hokkaido Innovation through Nanotechnology Support (HINTS)
  5. Grants-in-Aid for Scientific Research [23686026, 19049001, 23225006] Funding Source: KAKEN

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The quantitative determination of the strength of the near-field enhancement in and around nanostructures is essential for optimizing and using these structures for applications. We combine the Gaussian intensity distribution of a laser profile and two-photon-polymerization of SU-8 to a suitable tool for the quantitative experimental measurement of the near-field enhancement of a nanostructure. Our results give a feedback to the results obtained by finite-difference rime-domain (FDTD) simulations. The structures under investigation are gold nanotriangles on a glass substrate with 85 nm side length and a thickness of 40 nm. We compare the threshold fluence for polymerization for areas of the Gaussian intensity profile with and without the near-field enhancement of the nanostructures. The experimentally obtained value of the near-field intensity enhancement is 600 140, independent of the laser power, irradiation time, and spot size. The FDTD simulation shows a pointlike maximum of 2600 at the tip. In a more extended area with an approximate size close to the smallest polymerized structure of 25 nm in diameter, we find a value between 800 and 600. Using our novel approach, we determine the threshold fluence for polymerization of the commercially available photopolymerizable resin SU-8 by a femtosecond laser working at a wavelength of 795 nm and a repetition rate of 82 MHz to be 0.25 J/cm(2) almost independent of the irradiation time and the laser power used. This finding is important for future applications of the method because it enables one to use varying laser systems.

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