Reusability, Long‐Life Storage and Highly Sensitive Zirconium Nitride (ZrN) Surface‐Enhanced Raman Spectroscopy (SERS) Substrate Fabricated by Reactive Gas‐Timing Rf Magnetron Sputtering

Author:

Sucheewa Nguentra1,Wongwiriyapan Winadda1,Rattanawarinchai Prapakorn1,Wuttikhun Tuksadon2,Sinthiptharakoon Kittiphat2,Youngjan Saran2,Khemthong Pongtanawat2,Tumcharern Gamolwan2,Lertvanithphol Tossaporn3,Limsuwan Nutthamon3,Pankiew Apirak3,Horprathum Mati3,Porntheeraphat Supanit3,Yordsri Visittapong4,Khemasiri Narathon5,Obata Michiko6,Fujishige Masatsugu7,Takeuchi Kenji67,Endo Morinobu67,Klamchuen Annop2,Nukeaw Jiti1

Affiliation:

1. College of Materials Innovation and Technology King Mongkut's Institute of Technology Ladkrabang (KMITL) Chalongkrung Rd. Ladkrabang Bangkok 10520 Thailand

2. National Nanotechnology Center (NANOTEC) NSTDA 111 Thailand Science Park, Paholyothin Rd., Klong Nueng Klong Luang Pathum Thani 12120 Thailand

3. National Electronics and Computer Technology Center (NECTEC) NSTDA 111 Thailand Science Park, Paholyothin Rd., Klong Nueng Klong Luang Pathum Thani 12120 Thailand

4. National Metal and Materials Technology Center (MTEC) NSTDA 111 Thailand Science Park, Paholyothin Rd., Klong Nueng Klong Luang Pathum Thani 12120 Thailand

5. Research Institute for Electronic Science Hokkaido University N20 W10, Kita Sapporo 001‐0020 Japan

6. Interdisciplinary Cluster for Cutting Edge Research, Research Initiative for Supra‐Materials Shinshu University 4‐17‐1 Wakasato Nagano 380‐8553 Japan

7. Global Aqua Innovation Center Shinshu University 4‐17‐1 Wakasato Nagano 380‐8553 Japan

Abstract

AbstractTransition metal nitrides (TMN) are promising material alternative to replace noble metals in the field of plasmonic applications, especially surface‐enhanced Raman spectroscopy (SERS). Here  we  demonstrate a practical surface enhanced Raman spectroscopy (SERS) substrate using zirconium nitride (ZrN) thin films grown by reactive gas‐timing (RGT) rf magnetron sputtering. The tailored properties of ZrN thin film exploited for SERS activity could be achieved to obtain a highly sensitive ZrN thin film SERS substrate with the enhancement factor (EF) of 1.24 × 106 and 4.8 %RSD at 1626 cm‐1 toward methylene blue (MB) analyte which are comparable to the optimized Au sputtered thin films (EF=1.18 × 106 and with 5.1%RSD).  We  find that the spatial plasmonic hotspots on the surface of ZrN SERS substrate controlled by the turn‐on timing of Ar:N2 sputtered gas sequence, leading to the discrete conductive surface profile, strongly relates to non‐stoichiometric composition and the degree of (200)‐oriented texture at the surface of ZrN thin film. Furthermore, ZrN thin film SERS substrates exhibit an excellent recyclability more than 30 cycles with simple cleaning process and a storage time longer than 6 months. The detection and reusability of ZrN SERS substrate on the low concentration of trinitrotoluene (TNT) for homeland security are also performed.

Funder

National Science and Technology Development Agency

King Mongkut's Institute of Technology Ladkrabang

National Research Council of Thailand

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials

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