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VACUUM ›› 2026, Vol. 63 ›› Issue (1): 28-34.doi: 10.13385/j.cnki.vacuum.2026.01.05

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Research on the Standard System Related to Raman Spectroscopy Technology at Home and Abroard

LIU Bowen, WANG Ruisheng, LIANG Xianpeng, YIN Xiaojun, GUO Zhishuai, YUAN Quan, YANG Zhaoxiang, MENG Jingxiang   

  1. Shenyang Instrument Science Research Institute Co., Ltd., Shenyang 110043, China
  • Received:2025-02-18 Online:2026-01-25 Published:2026-02-02

Abstract: This paper studies and analyses the current status of Raman spectroscopy-related standard systems domestically and internationally, involving 42 current domestic standards, including 13 national standards, 15 industry standards, 4 local standards, 10 group standards. It involves 17 current international standards, including 8 ASTM International (American Society for Testing and Materials International) standards, 6 IEC (International Electrotechnical Commission) standards and 3 ISO (International Organization for Standardization) standards. Focusing on the content of the current relevant standards, the standardisation differences at home and abroad and the integration of standards were discussed. Finally, it summarizes the current standardisation system of Raman spectroscopy technology and looks forward to the future development direction, aiming to provide reference for the continuous improvement of the subsequent standardisation system and the research in related fields.

Key words: Raman spectroscopy, domestic standards, international standards, standardisation differences, integration of standards

CLC Number:  O433

[1] DAS R S, AGRAWAL Y K.Raman spectroscopy: Recent advancements, techniques and applications[J]. Vibrational spectroscopy, 2011, 57(2): 163-176.
[2] 刘博文,高鹏,王瑞生,等.拉曼检测仪器用干涉滤光片综述[J]. 真空,2023,60(6):37-41.
[3] FAN M, ANDRADE G F S, BROLO A G. A review on recent advances in the applications of surface-enhanced Raman scattering in analytical chemistry[J]. Analytica Chimica Acta, 2020, 1097: 1-29.
[4] DODO K, FUJITA K, SODEOKA M.Raman spectroscopy for chemical biology research[J]. Journal of the American Chemical Society, 2022, 144(43): 19651-19667.
[5] 王玉平,朱磊,仲嘉琪,等.同位素原子饱和吸收谱稳频的拉曼激光方案[J]. 光子学报,2024,53(1):40-48.
[6] KUHAR N, SIL S, VERMA T, et al.Challenges in application of Raman spectroscopy to biology and materials[J]. RSC Advances, 2018, 8(46): 25888-25908.
[7] BUTLER H J, ASHTON L, BIRD B, et al.Using Raman spectroscopy to characterize biological materials[J]. Nature Protocols, 2016, 11(4): 664-687.
[8] RALBOVSKY N M, LEDNEV I K.Towards development of a novel universal medical diagnostic method: Raman spectroscopy and machine learning[J]. Chemical Society Reviews, 2020, 49(20): 7428-7453.
[9] YIN K, DONG X, ZHANG F, et al.Superamphiphobic miniature boat fabricated by laser micromachining[J]. Applied Physics Letters, 2017, 110(12): 121909.
[10] QI Y, CHEN E X, HU D, et al.Applications of Raman spectroscopy in clinical medicine[J]. Food Frontiers, 2024, 5(2): 392-419.
[11] ZHANG X, TAN Q H, WU J B, et al.Review on the Raman spectroscopy of different types of layered materials[J]. Nanoscale, 2016, 8(12): 6435-6450.
[12] 李静,张媛,张莹,等.基于GA-GRNN算法和显微拉曼光谱的城市河流微塑料识别方法研究[J]. 光散射学报,2025,37(1):69-76.
[13] BERSANI D, LOTTICI P P.Applications of Raman spectroscopy to gemology[J]. Analytical and Bioanalytical Chemistry, 2010, 397: 2631-2646.
[14] WANG Z Y, LIU T, YU Y, et al.Coffee ring-inspired approach toward oriented self assembly of biomimetic Murray MOFs as sweat biosensor[J]. Small, 2018, 14(45): 1802670.
[15] 黄帅东. 用于月球矿物探测的拉曼光谱技术研究[D]. 西安:中国科学院大学,2024.
[16] 申玮,张文君,廉宇琦,等. 高分辨率MEMS纤毛式湍流传感器[J]. 微纳电子技术,2019,56(11):911-917.
[17] 武建龙,胡江荣,鲍萌萌,等. 基于专利数据的全球光刻技术竞争态势研究[J]. 科技与管理,2023,25(1):1-12.
[18] 柳艳. 基于拉曼光谱法的假药快速检测新方法的研究[D]. 上海:第二军医大学,2012.
[19] 覃治鹏. 中红外3μm波段Er:ZBLAN光纤激光器研究[D]. 上海:上海交通大学,2017.
[20] NTZIOUNI A, THOMSON J, XIARCHOS I, et al.Review of existing standards, guides, and practices for Raman spectroscopy[J]. Applied Spectroscopy, 2022, 76(7): 747-772.
[21] 王春喜,柳晓菁.传感器及仪器仪表技术发展和标准化现状[J]. 自动化博览, 2019(5):34-39.
[22] 邱柏凯,蒋东尧,萧健男,等.浅谈近年光学薄膜之应用[J]. 科仪新知, 2020(222):13-34.
[23] 孙言,王瑞生,支壮志.荧光成像系统对比度分析与成像仿真[J]. 光学仪器, 2018, 40(2):67-72.
[24] 高鹏,金秀,任少鹏,等.浅谈国内外光学薄膜技术标准[J]. 真空,2020,57(4):19-23.
[25] 张阳,李挺,刘沁,等.工业传感器技术及标准体系研究[J]. 仪表技术与传感器,2023(5):123-126.
[26] RODRIGUEZ J D, WESTENBERGER B J, BUHSE L F, et al.Standardization of Raman spectra for transfer of spectral libraries across different instruments[J]. Analyst, 2011, 136(20): 4232-4240.
[27] PENCE I, MAHADEVAN-JANSEN A.Clinical instrumentation and applications of Raman spectroscopy[J]. Chemical Society Reviews, 2016, 45(7): 1958-1979.
[28] HUTSEBAUT D, VANDENABEELE P, MOENS L.Evaluation of an accurate calibration and spectral standardization procedure for Raman spectroscopy[J]. Analyst, 2005, 130(8): 1204-1214.
[29] 王昕,康哲铭,刘龙,等.基于高斯核主成分分析的多通道拉曼光谱重建[J]. 光子学报,2020,49(3):130-139.
[30] QIN J, CHAO K, KIM M S.Raman chemical imaging system for food safety and quality inspection[J]. Transactions of the ASABE, 2010, 53(6): 1873-1882.
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