4.8 Article

Defect engineering in semiconductor-based SERS

期刊

CHEMICAL SCIENCE
卷 13, 期 5, 页码 1210-1224

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1sc05940h

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资金

  1. National Key R&D Program of China [2020YFB1505703]
  2. National Natural Science Foundation of China [52172299, 22175198, 51772319, 51772320, 51972331]
  3. Key Laboratory of Nanodevices of Jiangsu Province [Y4JAQ21004]
  4. Pilot Project of Fundamental Research of Suzhou City
  5. External Cooperation Program of the Chinese Academy of Sciences [121E32KYSB20190008]
  6. Six Talent Peaks Project of Jiangsu Province [XCL-170]
  7. Youth Innovation Promotion Association [CAS 2018356]
  8. Outstanding Youth Fund of Jiangxi Province [20192BCBL23027]

向作者/读者索取更多资源

Semiconductor-based SERS platforms can achieve noble-metal-comparable enhancement through defect engineering, improving detection concentrations for certain molecules. Defect engineering effectively utilizes various physicochemical parameters to tailor semiconductor properties for enhanced SERS effects.
Semiconductor-based surface enhanced Raman spectroscopy (SERS) platforms take advantage of the multifaceted tunability of semiconductor materials to realize specialized sensing demands in a wide range of applications. However, until quite recently, semiconductor-based SERS materials have generally exhibited low activity compared to conventional noble metal substrates, with enhancement factors (EF) typically reaching 10(3), confining the study of semiconductor-based SERS to purely academic settings. In recent years, defect engineering has been proposed to effectively improve the SERS activity of semiconductor materials. Defective semiconductors can now achieve noble-metal-comparable SERS enhancement and exceedingly low, nano-molar detection concentrations towards certain molecules. The reason for such success is that defect engineering effectively harnesses the complex enhancement mechanisms behind the SERS phenomenon by purposefully tailoring many physicochemical parameters of semiconductors. In this perspective, we introduce the main defect engineering approaches used in SERS-activation, and discuss in depth the electromagnetic and chemical enhancement mechanisms (EM and CM, respectively) that are influenced by these defect engineering methods. We also introduce the applications that have been reported for defective semiconductor-based SERS platforms. With this perspective we aim to meet the imperative demand for a summary on the recent developments of SERS material design based on defect engineering of semiconductors, and highlight the attractive research and application prospects for semiconductor-based SERS.

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