Development of a tip enhanced near-field laser ablation system for sub-micrometric analysis of solid samples

Development of a tip enhanced near-field laser ablation system for sub-micrometric analysis of solid samples
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发表时间:
2020
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通讯作者:
Chirelle Jabbour;J. Lacour;M. Tabarant;A. Semerok;F. Chartier;J-L. Lacour;S. Fomichev;J. Moryousef;J. Simonnet
Chirelle Jabbour;J. Lacour;M. Tabarant;A. Semerok;F. Chartier;J-L. Lacour;S. Fomichev;J. Moryousef;J. Simonnet
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其他
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作者:
Chirelle Jabbour;J. Lacour;M. Tabarant;A. Semerok;F. Chartier;J-L. Lacour;S. Fomichev;J. Moryousef;J. Simonnet

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We have studied the influence of the laser wavelength (266 nm and 532 nm) on the tip-enhanced near-field laser ablation of conducting gold and semiconducting silicon samples. The near-field laser ablation effect was obtained by coupling a nanosecond Nd:YAG laser to an atomic force microscope. Experiments were carried out at atmospheric pressure with one and multiple laser pulses. The near-field ablation showed distinct differences in the dimensions of the craters according to the laser wavelength and the nature of the sample. On gold samples, with the same number of laser pulses, larger craters were obtained at 532 nm while the crater depths remained almost constant for both wavelengths. On silicon samples and under the same experimental conditions, craters were only obtained at 266 nm, while at 532 nm no defined structure was observed below 200 laser pulses. These experimental results were in accordance with the numerical simulations of the localized heating given by a home-made 3D code. Both the experimental and theoretical approaches showed that the sample absorption coefficient set by the laser wavelength was one of