Morhart Tyler A, Unni Bipinlal, Lardner Michael J, Burgess Ian J
Department of Chemistry, University of Saskatchewan , Saskatoon, Saskatchewan S7N 5C9, Canada.
Anal Chem. 2017 Nov 7;89(21):11818-11824. doi: 10.1021/acs.analchem.7b03509. Epub 2017 Oct 25.
Thin, micromachined Si wafers, designed as internal reflection elements (IREs) for attenuated total reflectance infrared spectroscopy, are adapted to serve as substrates for electrochemical ATR surface enhanced infrared absorption spectroscopy (ATR-SEIRAS). The 500 μm thick wafer IREs with groove angles of 35° are significantly more transparent at long mid-IR wavelengths as compared to conventional large Si hemisphere IREs. The appeal of greater transparency is mitigated by smaller optical throughput at larger grazing angles and steeper angles of incidence at the reflecting plane that reduce the enhancement factor. Through use of the potential dependent adsorption of 4-methoxypyridine (MOP) as a test system, the microgroove IRE is shown to provide relatively strong electrochemical ATR-SEIRAS responses when the angle of incident radiation is between 50 and 55°, corresponding to refracted angles through the crystal of ∼40°. The higher than expected enhancement is attributed to attenuation of the reflection loss of p-polarized light and multiple reflections within the wafer-based IRE. The micromachined IREs are shown to outperform a 25 mm radius hemisphere in terms of S/N at wavenumbers less than ca. 1400 cm despite the weaker signal enhancement derived from the steeper angle incident on the IRE/sample interface. The high optical transparency of the new IREs allows the spectral observation of displaced water libration bands at ca. 730 cm upon solvent replacement by adsorbed MOP. The results are highly encouraging for the further development of low-cost, Si wafer-based IREs for electrochemical ATR-SEIRAS applications.
薄的微加工硅片被设计用作衰减全反射红外光谱的内反射元件(IREs),现被适配用作电化学ATR表面增强红外吸收光谱(ATR-SEIRAS)的基底。与传统的大尺寸硅半球IREs相比,厚度为500μm、槽角为35°的晶圆IREs在中红外长波长下具有显著更高的透明度。更大的透明度所带来的吸引力因较大掠射角下较小的光通量以及反射平面处更陡的入射角而有所减弱,这降低了增强因子。通过使用4-甲氧基吡啶(MOP)的电位依赖性吸附作为测试系统,结果表明当入射辐射角度在50°至55°之间时,微槽IRE能提供相对较强的电化学ATR-SEIRAS响应,对应于通过晶体的折射角约为40°。高于预期的增强归因于p偏振光反射损失的衰减以及基于晶圆的IRE内的多次反射。尽管入射到IRE/样品界面的角度更陡导致信号增强较弱,但在波数小于约1400 cm⁻¹时,微加工的IREs在信噪比方面优于半径为25 mm的半球。新IREs的高光学透明度使得在被吸附的MOP取代溶剂后,能够在约730 cm⁻¹处光谱观察到位移的水振动带。这些结果对于进一步开发用于电化学ATR-SEIRAS应用的低成本、基于硅晶圆的IREs极具鼓舞作用。