Compact Raman spectrometer system for low frequency spectroscopy

被引:8
作者
Moser, Christophe [1 ]
Havermeyer, Frank [1 ]
机构
[1] Ondax Inc, Monrovia, CA 91016 USA
来源
OPTICAL COMPONENTS AND MATERIALS VII | 2010年 / 7598卷
关键词
low frequency; volume grating; Raman; compact; triple spectrograph; notch filter; Stokes; anti-Stokes; CARBON NANOTUBES;
D O I
10.1117/12.842736
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
We report low frequency Stokes and anti-Stokes Raman spectra resolving frequency shifts down to 15 cm(-1) using a standard commercial Raman spectrometer with ultra-narrow band notch filters. The ultra-narrow band notch filters were fabricated holographically in a glass material with optical densities ranging from 4 to 6 per notch filter at the standard Raman laser lines of 488 nm, 532 nm, 633 nm and 785 nm. The notch filters have greater than 80% transmission at 15cm(-1) away from the laser line. This simple notch filter-based system provides high performance low frequency Raman spectroscopy as a low cost alternative to bulky and expensive triple spectrometer Raman systems. Optical Density
引用
收藏
页数:6
相关论文
共 50 条
[41]   Accuracy enhancement in low frequency gain and phase detector (AD8302) based bioimpedance spectroscopy system [J].
Mohamadou, Youssoufa ;
Momo, Foutse ;
Theophile, Lealea ;
Landry, C. Njike Kouekeu ;
Fabrice, Tueche ;
Emmanuel, Simeu .
MEASUREMENT, 2018, 123 :304-308
[42]   Perspective: Raman spectroscopy for detection and management of diseases affecting the nervous system [J].
Robertson, John L. ;
Issa, Amr Sayed ;
Senger, Ryan S. .
FRONTIERS IN VETERINARY SCIENCE, 2024, 11
[43]   Development of a MEMS-Based Raman Spectrometer [J].
Russin, Timothy ;
Fralick, Mark ;
Kerber, Max ;
Wang, Andrew ;
Waters, Richard .
2010 IEEE SENSORS, 2010, :56-60
[44]   High-performance dual Raman spectrometer [J].
Tejeda, G ;
FernandezSanchez, JM ;
Montero, S .
APPLIED SPECTROSCOPY, 1997, 51 (02) :265-276
[45]   ExoMars Raman Laser Spectrometer Breadboard Overview [J].
Diaz, E. ;
Moral, A. G. ;
Canora, C. P. ;
Ramos, G. ;
Barcos, O. ;
Prieto, J. A. R. ;
Hutchinson, I. B. ;
Ingley, R. ;
Colombo, M. ;
Canchal, R. ;
Davila, B. ;
Manfredi, J. A. R. ;
Jimenez, A. ;
Gallego, P. ;
Pla, J. ;
Margoilles, R. ;
Rull, F. ;
Sansano, A. ;
Lopez, G. ;
Catala, A. ;
Tato, C. .
INSTRUMENTS, METHODS, AND MISSIONS FOR ASTROBIOLOGY XIV, 2011, 8152
[46]   Polarized Raman Spectroscopy for Determining Crystallographic Orientation of Low-Dimensional Materials [J].
Xu, Bo ;
Mao, Nannan ;
Zhao, Yan ;
Tong, Lianming ;
Zhang, Jin .
JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2021, 12 (31) :7442-7452
[47]   Raman spectroscopy for medulloblastoma [J].
Bartosz Polis ;
Anna Imiela ;
Lech Polis ;
Halina Abramczyk .
Child's Nervous System, 2018, 34 :2425-2430
[48]   Raman Spectroscopy of Graphene [J].
Wu Juanxia ;
Xu Hua ;
Zhang Jin .
ACTA CHIMICA SINICA, 2014, 72 (03) :301-318
[49]   Raman spectroscopy of diamondoids [J].
Filik, Jacob ;
Harvey, Jeramy N. ;
Allan, Neil L. ;
May, Paul W. ;
Dahl, Jeremy E. P. ;
Liu, Shenggao ;
Carlson, Robert M. K. .
SPECTROCHIMICA ACTA PART A-MOLECULAR AND BIOMOLECULAR SPECTROSCOPY, 2006, 64 (03) :681-692
[50]   Raman spectroscopy for medulloblastoma [J].
Polis, Bartosz ;
Imiela, Anna ;
Polis, Lech ;
Abramczyk, Halina .
CHILDS NERVOUS SYSTEM, 2018, 34 (12) :2425-2430