• Journal of Infrared and Millimeter Waves
  • Vol. 41, Issue 1, 2021234 (2022)
Jing YANG1, Jie-Fu QIU2, Hui JIANG3, Min HU2, Sheng-Gang LIU2, and Hui ZHANG1、*
Author Affiliations
  • 1Dept. of Archaeology,Cultural Heritage and Museology,School of Art and Archaeology,Zhejiang University,Hangzhou 310028,China
  • 2School of Electronic Science and Engineering,University of Electronic Science and Technology of China,Chengdu 610054,China
  • 3School of Materials and Energy,University of Electronic Science and Technology of China,Chengdu 610054,China
  • show less
    DOI: 10.11972/j.issn.1001-9014.2022.01.016 Cite this Article
    Jing YANG, Jie-Fu QIU, Hui JIANG, Min HU, Sheng-Gang LIU, Hui ZHANG. The application of terahertz technology in paintings[J]. Journal of Infrared and Millimeter Waves, 2022, 41(1): 2021234 Copy Citation Text show less
    References

    [1] J B Jackson, M Mourou. Terahertz Imaging For Non-Destructive Evaluation of Mural Paintings. Optics Communications, 281, 527-532(2008).

    [2] Kleist , M Elyse, Dandolo et al. Terahertz Spectroscopy and Quantum Mechanical Simulations of Crystalline Copper-Containing Historical Pigments. The Journal of Physical Chemistry A, 123, 1225-1232(2019).

    [3] J W Fleming. High-Resolution Submillimeter-Wave Fourier-Transform Spectrometry of Gases. IEEE Transactions on Microwave Theory and Techniques, MT22, 1023-1025(1974).

    [4] Xin ZHAO, Jun-Sen LAI. Research on Terahertz Communication Technology. Telecommunication Network Technology, 10, 56-59(2015).

    [5] Jiang-Li MA. Application of terahertz imaging technology in detection of cultural relics and artworks. Science of Conservation and Archaeology, 28, 11(2016).

    [6] M Koch, S Hunsche, P Schumacher. THz-imaging: A new method for density mapping of wood. Wood Science and Technology, 32, 421-427(1998).

    [7] K Fukunaga, I Hosako, I N Duling et al. Terahertz imaging systems: A non-invasive technique for the analysis of paintings, 73910(2009).

    [8] K Fukunaga. Innovative terahertz spectroscopy and imaging technique for art conservation science. E-Conservation, 10, 30-42(2009).

    [9] K Fukunaga. Terahertz spectral database: Construction of open terahertz spectral database. Journal of the National Institute of Information and Communications Technology, 55, 61-66(2008).

    [10] K Fukunaga, M Picollo. Terahertz spectroscopy applied to the analysis of artists’ materials. Applied Physics A-Materials Science & Processing, 100, 591-597(2010).

    [11] J B Jackson. A Survey of Terahertz Applications in Cultural Heritage Conservation Science. IEEE Transaction on Terahertz Science and Technology, 1, 220-231(2011).

    [12] D Pinna, M Galeotti, R Mazzeo et al. Scientific Examination for the Investigation of Paintings: A Handbook for Conservator-Restorers. Centro Di Firenze(2009).

    [13] S Legrand, F Vanmeert, Snickt G Van Der et al. Examination of historical paintings by state-of-the-art hyperspectral imaging methods: from scanning infra-red spectroscopy to computed X-ray laminography. Heritage Science, 2, 1-11(2014).

    [14] C B Matthew, M T Gordon, A S Charles. Terahertz Spectroscopy. The Journal of Physical Chemistry B, 29, 7146-7159(2002).

    [15] B B Jason, W G Glenn. Terahertz Spectroscopy. Analytical Chemistry, 2, 4342-4368(2011).

    [16] Grischkowsky , D Keiding, E S Van et al. Journal of the Optical Society of America B, 7, 2006(1990).

    [17] Hankyu Nam-kung, Jae-jin Kim. Impact of Pellet Thickness on Quantitative Terahertz Spectroscopy of Solid Samples in a Polyethylene Matrix. Analytical Chemistry, 8, 3674-3681(2013).

    [18] F Pavanello, F Garet, M B Kuppam et al. Broadband ultra-low-loss mesh filters on flexible cyclic olefin copolymer films for terahertz applications. Applied Physics Letters, 102, 111114, 1-4(2013).

    [19] Y Kishi, M Nagai, J C Young et al. Terahertz laminated-structure polarizer with high extinction ratio and transmission power. Applied Physics Express, 8, 032201, 1-4(2015).

    [20] T S Hartwick, D T Hodges, D H Barker et al. Far infrared imagery, 15, 1919-1922(1976).

    [21] Zhuo-Yong ZHANG, Xin ZHANG. Research progress of terahertz time domain spectroscopy. Spectroscopy and Spectral Analysis, S1, 54-55(2016).

    [22] Bing-hua CAO, Su-zhen LI, En-ze CAI et al. Progress of terahertz imaging technology. Spectroscopy and Spectral Analysis, 40, 2686-2695(2020).

    [23] K Fukunaga. THz Technology Applied to Cultural Heritage in Practice(2016).

    [24] A Keil, T Hoyer, J Peuser et al. All-Electronic 3D THz Synthetic Reconstruction Imaging System(2011).

    [25] T. Hoyer, T. Loffler, T. Saito et al. A Portable All-Electronic THz Scanner for the Inspection of Structural Earthquake Damage in Japanese Buildings. 37th International Conference on Infrared, Millimeter, and WavesTerahertz, Wollongong, Australia(2013).

    [26] J. M. Chamberlain, M. F. Kimmitt, A. Crompton et al. Where optics meets electronics: Recent progress in decreasing the terahertz gap. Philosophical Transactions of the Royal Society of London Series A-Mathematical Physical and Engineering Sciences, 362, 212-213(2004).

    [28] B A Price, B Pretzel, S Q Lomax et al. Revised JCAMP-DX spectral file format for submissions to the infrared Raman Users Group (IRUG) spectral database.

    [29] H T Lee, H Sim, K I Kim et al. Optimal Methodologies for Terahertz Time-Domain Spectroscopic Analysis of Traditional Pigments in Powder. Journal of the Korean Physical Society, 70, 866-871(2017).

    [30] Ping ZHOU, Yang QI, Ze-yu LI et al. Progress in the application of terahertz technology in the field of cultural heritage. Science of Conservation and Archaeology, 28, 133-143(2016).

    [31] Marcello Picollo, Costanza Cucci. A new artists’ materials spectroscopic archive in the THz region(2010).

    [32] Tanabe , T Watanabe, K Oyama. Polarization sensitive THz absorption spectroscopy for the evaluation of uniaxially deformed ultra-high molecular weight polyethylene. NDT&E international, 43, 329-333(2010).

    [33] J C Karr, Kovach . Far-Infrared Spectroscopy of Minerals and Inorganics. Applied Spectroscopy, 23, 219-223(1969).

    [34] J B Jackson, M Mourou, J F Whitaker. A Terahertz imaging for non-destructive evaluation of mural paintings. Optics Communications, 281, 527-532(2008).

    [35] C Y LI, N C SHI, G H LI et al. Study of the traditional Chinese pigments by terahertz time-domain and Fourier-transform infrared spectroscopy(2017).

    [36] Yu-ping YANG, Dong-wei ZHAI. THz Spectroscopic Identification of Red Mineral Pigments in Ancient Chinese Artworks. Journal of Infrared, Millimeter, and Terahertz Waves, 38, 1232-1240(2017).

    [37] H Yada, M Nagai, K Tanaka. Origin of the fast relaxation component of water and heavy water revealed by terahertz time-domain attenuated total reflection spectroscopy. Chemical Physics Letters, 464, 166-170(2008).

    [38] K Liu, M G Brown, J D Cruzan et al. Terahertz laser spectroscopy of the water pentamer: structure and hydrogen bond rearrangement dynamics. The Journal of Physical Chemistry A, 101, 9011-9021(1997).

    [39] Taeyo On-hong, Kyu jin-choi, Tae woo-ha. Terahertz Time-domain and Fourier-transform Infrared Spectroscopy of Traditional Korean Pigments. Journal of the Korean Physical Society, 64, 727-731(2014).

    [40] E Abraham, K Fukunaga. Terahertz imaging applied to the examination of artistic objects. Studies in Conservation, 60, 343-352.

    [41] B Hu, M C Nuss. Imaging with terahertz waves. Optics letters, 20, 1716(1995).

    [42] W. Kohler, M. Panzer. Proceedings of the European Conference of NDT(2006).

    [43] K Fukunaga, P I Hosako, Y Kohdzuma. Terahertz analysis of an East Asian historical mural painting. Journal of the European Optical Society Rapid AL Publications, 5, 10024(2010).

    [44] Marcello Picollo. Obtaining noninvasive stratigraphic details of panel paintings using terahertz time-domain spectroscopy imaging system. Journal of Cultural Heritage, 16, 73-80(2015).

    [45] J Aurèle, L Adam, C Paul et al. Terahertz imaging of hidden paint layers on canvas. Optics Express, 17, 3407(2009).

    [46] E Abraham, A Younus, A E Fatimy et al. Broadband terahertz imaging of documents written with lead pencils. Optics Communications, 282, 3104-3107(2009).

    [47] C L Orinna, Koch-Dandolo , Troels Filtenborg. Reflection Terahertz Time-Domain Imaging For Analysis Of An 18th Century Neoclassical Easel Painting. Applied Optics, 54, 5123-5129(2015).

    [48] K Fukunaga. THz pulsed time-domain imaging of an oil canvas painting: a case study of a painting by Pablo Picasso. Applied Physics A, 122, 106(2016).

    [49] A M Gomez-Sepulveda. History of Mexican Easel Paintings from an Altarpiece Revealed by Non-invasive Terahertz Time-Domain Imaging. Infrared Milli-Terahertz Waves, 38, 403-412(2017).

    [50] Chiara Ciano, Mariano Flammini. Confocal Imaging at 0.3 THz with Depth Resolution of a Painted Wood Artwork for the Identification of Buried Thin Metal Foils. IEEE Transactions on Terahertz Science and Technology, 8, 390-396(2018).

    [51] S S Anton, J B Jackson, MI Bakunov. Terahertz time-domain imaging of hidden defects in wooden artworks: application to a Russian icon painting. Applied Optics, 53, 1033-1038(2014).

    [52] Kirsti Krügener. Non-destructive Analysis of Material Detachments from Polychromatically Glazed Terracotta Artwork by THz Time-of-Flight Spectroscopy. Journal of Infrared, Millimeter, and Terahertz Waves, 38, 495-502(2017).

    [53] Kyoko Ohno, Min-jung Kim. Application of terahertz wave imaging technique for surveying of surface layer structure of the painting cultural properties. Poster.

    [54] Xue MA. Study on Terahertz Imaging of Calligraphy and Painting Artwork(2018).

    [55] Xue Ma, Ke-Jia Wang, Frédéric Fauquet et al. Terahertz frequency modulated continuous wave imaging for non-destructive evaluation of painting and multilayer parts(2018).

    [56] K Fukunaga. Terahertz Spectroscopy for Non-Invasive Analysis of Cultural Properties. Journal of the National Institute of Information and Communications Technology, 55, 223-228(2008).

    [57] B Recur, A Younus, S Salort et al. Investigation on reconstruction methods applied to 3D terahertz computed tomography. Optics Express, 19, 5105-5117(2011).

    [58] J P Caumes, A Younus, S Salort et al. Terahertz tomographic imaging of XVIIIth Dynasty Egyptian sealed pottery. Applied Optics, 50, 3604-3608(2011).

    [59] David Giovannacci. Time-domain imaging system in the terahertz range for immovable cultural heritage materials. John Wiley & Sons Ltd, 55, SI(2018).

    [60] A. Doria, E. Giovenale, G. P. Gallerano et al. A Millimeter Wave, Terahertz 3D Scanner for Wall Painting Investigation(2014).

    [61] Liang , H Cid, M G Cucu et al. En-face optical coherence tomography—A novel application of non-invasive imaging to art conservation. Optics Express, 13, 6133(2005).

    [62] Arecchi , T Bellini, M Corsi et al. New tool for painting diagnostics: Optical coherence tomography. Optics and Spectroscopy, 101, 23-26(2006).

    [63] Targowski , P. Iwanicka. Optical Coherence Tomography: It’s Role in the Non-Invasive Structural Examination and Conservation of Cultural Heritage Objects-A Review. Applied Physics A. Mater, 106, 265-277(2012).

    [64] N Eastaugh. Pigment Compendium: A Dictionary and Optical Microscopy of Historical Pigments(2008).

    [65] B Peric. Optical Coherence Tomography Applied to Investigations of Optical Properties of Paintings(2008).

    [66] A Randy, A Heyler, J Carriere. THz-Raman – Accessing molecular structure with Raman spectroscopy for enhanced chemical identification, analysis and monitoring. Next-Generation Spectroscopic Technologies VI, 8726(2013).

    [67] Elyse M. Kleist, Timothy M. Korter. Quantitative Analysis of Minium and Vermilion Mixtures Using Low-Frequency Vibrational Spectroscopy. Analytical Chemistry, 92, 1211-1218(2020).

    [68] C L Orinna, Koch Dandolo, Maxime Lopez. Toward a multimodal fusion of layered cultural object images: complementarity of optical coherence tomography and terahertz time-domain imaging in the heritage field. Applied Optics, 58, 10(2019).

    [69] T E Villafana, W P Brown, Delaney . Femtosecond pump-probe microscopy generates virtual cross-sections in historic artwork. Proceedings of National Academy of Sciences, 111, 1708-1713(2014).

    [70] J Yu, W S Warren, M C Fischer. Spectroscopic Differentiation and Microscopic Imaging of Red Organic Pigments Using Optical Pump–Probe Contrast. Analytical Chemistry, 90, 12686-12691(2018).

    [71] Meropi Mari, George Filippidis. Non-Linear Microscopy: A Well-Established Technique for Biological Applications towards Serving as a Diagnostic Tool for in situ Cultural Heritage Studies. Sustainability, 12, 1409(2020).

    [72] Wei-wei YUE, Wei-ning WANG, Guo-zhong ZHAO. Terahertz spectroscopy of aromatic amino acids. Acta Physica Sinica, 7, 3094-3099(2005).

    [73] Rong FU, Zhe LI, Biao-bing JIN. Vibrational spectroscopy of alanine. Spectroscopy and Spectral Analysis, 30, 2023-2026(2010).

    [74] Caumes , Jean-Pascal , Younus . Terahertz tomographic imaging of XVIIIth dynasty Egyptian sealed pottery. Applied Optics, 50, 3604-3608(2011).

    [75] B Maryelle., C Bruno., P C Jean.. Three-dimensional terahertz computed tomography of human bones. Applied Optics, 51, 6738-6744(2012).

    Jing YANG, Jie-Fu QIU, Hui JIANG, Min HU, Sheng-Gang LIU, Hui ZHANG. The application of terahertz technology in paintings[J]. Journal of Infrared and Millimeter Waves, 2022, 41(1): 2021234
    Download Citation