Acta Optica Sinica, Volume. 43, Issue 15, 1530001(2023)
Research Progress on High Resolution Laser Differential Confocal Raman Spectroscopy
[1] Puppels G J, de Mul F F M, Otto C et al. Studying single living cells and chromosomes by confocal Raman microspectroscopy[J]. Nature, 347, 301-303(1990).
[2] Xie F X, Li H, Wang X S et al. Mechanism for zincophilic sites on zinc-metal anode hosts in aqueous batteries[J]. Advanced Energy Materials, 11, 2003419(2021).
[3] Gadelha A C, Ohlberg D A A, Rabelo C et al. Localization of lattice dynamics in low-angle twisted bilayer graphene[J]. Nature, 590, 405-409(2021).
[4] Zhang X, Qiao X F, Shi W et al. Phonon and Raman scattering of two-dimensional transition metal dichalcogenides from monolayer, multilayer to bulk material[J]. Chemical Society Reviews, 44, 2757-2785(2015).
[5] Faraone G, Balduzzi E, Martella C et al. Thickness determination of anisotropic van der Waals crystals by Raman spectroscopy: the case of black phosphorus[J]. Nanotechnology, 31, 415703(2020).
[6] He M, Li C S, Zhang H C et al. Oxygen induced promotion of electrochemical reduction of CO2 via co-electrolysis[J]. Nature Communications, 11, 3844(2020).
[7] Harrington M J, Razghandi K, Ditsch F et al. Origami-like unfolding of hydro-actuated ice plant seed capsules[J]. Nature Communications, 2, 337(2011).
[8] Lang S Y, Yu S H, Feng X R et al. Understanding the lithium-sulfur battery redox reactions via operando confocal Raman microscopy[J]. Nature Communications, 13, 4811(2022).
[9] Liu X Y, Guo S X, Bocklitz T et al. Nondestructive 3D imaging and quantification of hydrated biofilm matrix by confocal Raman microscopy coupled with non-negative matrix factorization[J]. Water Research, 210, 117973(2022).
[10] Kitt J P, Bryce D A, Minteer S D et al. Confocal Raman microscopy for in situ measurement of phospholipid-water partitioning into model phospholipid bilayers within individual chromatographic particles[J]. Analytical Chemistry, 90, 7048-7055(2018).
[11] Seidel J, Miao Y P, Porterfield W et al. Structure–activity–distribution relationship study of anti-cancer antimycin-type depsipeptides[J]. Chemical Communications, 55, 9379-9382(2019).
[12] Wen J, Tang T C, Kanwal S et al. Detection and classification of multi-type cells by using confocal Raman spectroscopy[J]. Frontiers in Chemistry, 9, 641670(2021).
[13] Yan S S, Wang S Y, Qiu J X et al. Raman spectroscopy combined with machine learning for rapid detection of food-borne pathogens at the single-cell level[J]. Talanta, 226, 122195(2021).
[14] Liu X X, Zhang N Z, Yu L et al. Imaging the phase of starch-gelatin blends by confocal Raman microscopy[J]. Food Hydrocolloids, 60, 7-10(2016).
[15] Joshi R, Lohumi S, Joshi R et al. Raman spectral analysis for non-invasive detection of external and internal parameters of fake eggs[J]. Sensors and Actuators B: Chemical, 303, 127243(2020).
[16] Li D M, Zhu Z W, Sun D W. Visualization and quantification of content and hydrogen bonding state of water in apple and potato cells by confocal Raman microscopy: a comparison study[J]. Food Chemistry, 385, 132679(2022).
[17] Fan D S, Huang W, Liu T C Y et al. Quantitative analysis of blended oils by confocal Raman spectroscopy and chemometrics in situ[J]. Food Control, 142, 109244(2022).
[18] Ezegbogu M O. Identifying the scene of a crime through pollen analysis[J]. Science & Justice, 61, 205-213(2021).
[19] Mistek E, Halámková L, Doty K C et al. Race differentiation by Raman spectroscopy of a bloodstain for forensic purposes[J]. Analytical Chemistry, 88, 7453-7456(2016).
[20] Muro C K, Doty K C, de Souza Fernandes L et al. Forensic body fluid identification and differentiation by Raman spectroscopy[J]. Forensic Chemistry, 1, 31-38(2016).
[21] Chen Y J, Syed-Hassan S S A, Xiong Z et al. Temporal and spatial evolution of biochar chemical structure during biomass pellet pyrolysis from the insights of micro-Raman spectroscopy[J]. Fuel Processing Technology, 218, 106839(2021).
[22] Dariz P, Schmid T. Phase composition and burning history of high-fired medieval gypsum mortars studied by Raman microspectroscopy[J]. Materials Characterization, 151, 292-301(2019).
[23] Nasdala L, Schmidt C. Applications of Raman spectroscopy in mineralogy and geochemistry, elements: an international magazine of mineralogy, geochemistry[J]. Petrology, 16, 99-104(2020).
[24] Govil A, Pallister D M, Morris M D. Three-dimensional digital confocal Raman microscopy[J]. Applied Spectroscopy, 47, 75-79(1993).
[25] Ling J A, Weitman S D, Miller M A et al. Direct Raman imaging techniques for study of the subcellular distribution of a drug[J]. Applied Optics, 41, 6006-6017(2002).
[26] Offroy M, Moreau M, Sobanska S et al. Pushing back the limits of Raman imaging by coupling super-resolution and chemometrics for aerosols characterization[J]. Scientific Reports, 5, 12303(2015).
[27] Cui H, Zhao W Q, Wang Y et al. Improving spatial resolution of confocal Raman microscopy by super-resolution image restoration[J]. Optics Express, 24, 10767-10776(2016).
[28] Duponchel L, Milanfar P, Ruckebusch C et al. Super-resolution and Raman chemical imaging: from multiple low resolution images to a high resolution image[J]. Analytica Chimica Acta, 607, 168-175(2008).
[29] Manifold B, Thomas E, Francis A T et al. Denoising of stimulated Raman scattering microscopy images via deep learning[J]. Biomedical Optics Express, 10, 3860-3874(2019).
[30] Winterauer D J, Funes-Hernando D, Duvail J L et al. Sub-micron spatial resolution in far-field Raman imaging using positivity-constrained super-resolution[J]. Applied Spectroscopy, 73, 902-909(2019).
[31] Winterauer D J, Funes-Hernando D, Duvail J L et al. Nanoscale spatial resolution in far-field Raman imaging using hyperspectral unmixing in combination with positivity constrained super-resolution[J]. Applied Spectroscopy, 74, 780-790(2020).
[32] Schrum K F, Ko S H, Ben-Amotz D. Description and theory of a fiber-optic confocal and super-focal Raman microspectrometer[J]. Applied Spectroscopy, 50, 1150-1155(1996).
[33] Ma J Y, Ben-Amotz D. Rapid micro-raman imaging using fiber-bundle image compression[J]. Applied Spectroscopy, 51, 1845-1848(1997).
[34] Roider C, Ritsch-Marte M, Jesacher A. High-resolution confocal Raman microscopy using pixel reassignment[J]. Optics Letters, 41, 3825-3828(2016).
[35] Everall N. The influence of out-of-focus sample regions on the surface specificity of confocal Raman microscopy[J]. Applied Spectroscopy, 62, 591-598(2008).
[36] Everall N J. Confocal Raman microscopy: performance, pitfalls, and best practice[J]. Applied Spectroscopy, 63, 245A-262A(2009).
[37] Everall N, Lapham J, Adar F et al. Optimizing depth resolution in confocal Raman microscopy: a comparison of metallurgical, dry corrected, and oil immersion objectives[J]. Applied Spectroscopy, 61, 251-259(2007).
[38] Tormo A D, Khalenkow D, Saurav K et al. Superresolution 4π Raman microscopy[J]. Optics Letters, 42, 4410-4413(2017).
[39] Lu J, Min W, Conchello J A et al. Super-resolution laser scanning microscopy through spatiotemporal modulation[J]. Nano Letters, 9, 3883-3889(2009).
[40] Watanabe K, Palonpon A F, Smith N I et al. Structured line illumination Raman microscopy[J]. Nature Communications, 6, 10095(2015).
[41] Chen H K, Wang S Q, Zhang Y Q et al. Structured illumination for wide-field Raman imaging of cell membranes[J]. Optics Communications, 402, 221-225(2017).
[42] Kann B, Windbergs M. Chemical imaging of drug delivery systems with structured surfaces-a combined analytical approach of confocal Raman microscopy and optical profilometry[J]. The AAPS Journal, 15, 505-510(2013).
[43] Matsumoto M, Huang H, Harada H et al. On the phase transformation of single-crystal 4H–SiC during nanoindentation[J]. Journal of Physics D: Applied Physics, 50, 265303(2017).
[44] Zhou Z F, Li C, He T Y et al. Facile large-area autofocusing Raman mapping system for 2D material characterization[J]. Optics Express, 26, 9071-9080(2018).
[45] Caspers P J, Lucassen G W, Puppels G J. Combined in vivo confocal Raman spectroscopy and confocal microscopy of human skin[J]. Biophysical Journal, 85, 572-580(2003).
[46] Wu Z G, Jiang L W, Wang W B et al. Precise in vivo tissue micro-Raman spectroscopy with simultaneous reflectance confocal microscopy monitoring using a single laser[J]. Optics Letters, 44, 1383-1386(2019).
[47] Winogrodzka A, Valefi M, de Rooij M B et al. Measurement of chemical and geometrical surface changes in a wear track by a confocal height sensor and confocal Raman spectroscopy[J]. Archives of Civil and Mechanical Engineering, 14, 1-5(2014).
[48] Khan K M, Krishna H, Majumder S K et al. Depth-sensitive Raman spectroscopy combined with optical coherence tomography for layered tissue analysis[J]. Journal of Biophotonics, 7, 77-85(2014).
[49] Kang J W, Lue N, Kong C R et al. Combined confocal Raman and quantitative phase microscopy system for biomedical diagnosis[J]. Biomedical Optics Express, 2, 2484-2492(2011).
[50] D’Brant L Y, Desta H, Khoo T C et al. Methamphetamine-induced apoptosis in glial cells examined under marker-free imaging modalities[J]. Journal of Biomedical Optics, 24, 046503(2019).
[51] Zhao W Q, Tan J B, Qiu L R. Bipolar absolute differential confocal approach to higher spatial resolution[J]. Optics Express, 12, 5013-5021(2004).
[52] Zhao W Q, Tan J B, Qiu L R et al. SABCMS, a new approach to higher lateral resolution of laser probe measurement system[J]. Sensors and Actuators A: Physical, 120, 17-25(2005).
[53] Cui H, Wang Y, Qiu L R et al. Synchronous nanoscale topographic and chemical mapping by differential-confocal controlled Raman microscopy[J]. Photonics Research, 8, 1441-1447(2020).
[54] Cui H. Research on laser differential confocal Raman microscopy with high spatial resolution[D](2017).
[55] Zhao W Q, Cui H, Qiu L R et al. Laser differential confocal map microimaging imaging method and device[P].
[56] Zhao W Q, Cui H, Qiu L R et al. Laser differential confocal mapping-spectrum microscopic imaging method and device[P].
[57] Li S C, Qiu L R, Wang Y et al. Super-resolution radially polarized pupil-filtering confocal Raman spectroscopy technology[J]. Measurement Science and Technology, 31, 035903(2020).
[58] Li S C. Method and technology research on radial polarization differential confocal Raman spectrum imaging spectroscopy with high resolution[D](2020).
[59] Shao R J. Research on high spatial resolution laser dual differential confocal raman fast imaging method and technology[D](2020).
[60] Shao R J, Zhao W Q, Qiu L R et al. Dual differential confocal method for surface profile measurement with a large sensing measurement range[J]. Applied Optics, 59, 614-621(2020).
[61] Zhang R R. Method and technology research on high resolution divided-aperture dual differential confocal raman spectrum imaging spectroscopy[D](2022).
[62] Zhang R R, Wu H X, Su Y H et al. In-situ high-precision surface topographic and Raman mapping by divided-aperture differential confocal Raman microscopy[J]. Applied Surface Science, 546, 149061(2021).
[63] Li R J, Xu D M, Li A Z et al. High spatial resolution of topographic imaging and Raman mapping by differential correlation-confocal Raman microscopy[J]. Optics Express, 30, 41447-41458(2022).
[64] Li R J, Ma H, Li A Z et al. Fast measurement method of defocused differential correlation-confocal microscopy[J]. Measurement, 206, 112271(2023).
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Lirong Qiu, Han Cui, Yun Wang, Kemi Xu, Weiqian Zhao. Research Progress on High Resolution Laser Differential Confocal Raman Spectroscopy[J]. Acta Optica Sinica, 2023, 43(15): 1530001
Category: Spectroscopy
Received: Mar. 30, 2023
Accepted: May. 15, 2023
Published Online: Jul. 28, 2023
The Author Email: Zhao Weiqian (zwq669@126.com)