Bykov Sergei V, Asher Sanford A
Department of Chemistry, University of Pittsburgh, Pittsburgh, Pennsylvania, USA.
Appl Spectrosc. 2024 Feb;78(2):227-242. doi: 10.1177/00037028231217986. Epub 2024 Jan 11.
We developed a state-of-the-art, high-sensitivity, low-stray-light standoff deep-ultraviolet (DUV) Raman spectrometer for the trace detection of resonance Raman-enhanced chemical species. As an excitation source for Raman measurements, we utilized our recently developed, second-generation, miniaturized, diode-pumped, solid-state neodymium-doped gadolinium orthovanadate (Nd:GdVO) laser that generates quasi-continuous wave 228 nm light. This 228 nm excitation enhances the Raman intensities of vibrations of NO groups in explosive molecules, aromatic groups in biological molecules, and various aromatic hydrocarbons. Our DUV Raman spectrograph utilizes a custom DUV /8 Cassegrain telescope with an ∼200 mm diameter primary mirror, high-efficiency DUV transmission gratings, custom DUV mirrors, and a custom 228 nm Rayleigh rejection filter. We utilized our new standoff DUV Raman spectrometer to measure high signal-to-noise ratio spectra of ∼50 μg/cm drop-cast explosives: ammonium nitrate (AN), trinitrotoluene, pentaerythritol tetranitrate as well as aromatic biological molecules: lysozyme, tryptophan, tyrosine, deoxycytidine monophosphate, deoxyadenosine monophosphate at an ∼3 m distance within 10-30 s accumulation times. We roughly estimate the average ultraviolet resonance Raman (UVRR) detection limits for the relatively homogeneous drop-cast films of explosives and biological molecules to be ∼1 μg/cm when utilizing a continuous raster scanning that averages Raman signal over ∼1 cm sample area to avoid quick analyte depletion due to ultraviolet (UV) photolysis. We determined 3 m standoff UVRR detection limits for drop-cast AN films and identified factors impacting UVRR detection limits such as analyte photochemistry and analyte morphology. We found a detection limit of ∼0.5 μg/cm for drop-cast AN films on glass substrates when the Raman signal is averaged over ∼0.5 cm of sample surface using a continuous raster scan. For a step raster scan, when the probed sample area is limited to the laser spot size, the detection limit is approximately tenfold higher (∼5 μg/cm) due to the impact of UV photochemistry.
我们开发了一种最先进的、高灵敏度、低杂散光的远距离深紫外(DUV)拉曼光谱仪,用于痕量检测共振拉曼增强化学物质。作为拉曼测量的激发源,我们使用了最近开发的第二代小型化二极管泵浦固态掺钕钒酸钆(Nd:GdVO)激光器,它能产生准连续波228nm的光。这种228nm激发增强了爆炸物分子中NO基团振动、生物分子中芳香基团以及各种芳香烃的拉曼强度。我们的深紫外拉曼光谱仪采用了定制的DUV /8卡塞格伦望远镜,其主镜直径约200mm,高效DUV透射光栅、定制DUV镜以及定制的228nm瑞利散射抑制滤光片。我们利用新的远距离深紫外拉曼光谱仪在10 - 30s的累积时间内,在约3m的距离测量了约50μg/cm的滴铸爆炸物:硝酸铵(AN)、三硝基甲苯、季戊四醇四硝酸酯以及芳香生物分子:溶菌酶、色氨酸、酪氨酸、脱氧胞苷单磷酸、脱氧腺苷单磷酸的高信噪比光谱。当使用连续光栅扫描在约1cm的样品区域上平均拉曼信号以避免由于紫外(UV)光解导致分析物快速耗尽时,我们大致估计了爆炸物和生物分子相对均匀的滴铸薄膜的平均紫外共振拉曼(UVRR)检测限约为1μg/cm。我们确定了滴铸AN薄膜的3m远距离UVRR检测限,并确定了影响UVRR检测限的因素,如分析物光化学和分析物形态。当使用连续光栅扫描在约0.5cm的样品表面上平均拉曼信号时,我们发现玻璃基板上滴铸AN薄膜的检测限约为0.5μg/cm。对于步进光栅扫描,当探测的样品区域限于激光光斑大小时,由于UV光化学的影响,检测限大约高十倍(约5μg/cm)。