Chinese Journal of Lasers, Volume. 43, Issue 2, 204001(2016)
Study on Photoacoustic Noninvasive Detection for Blood Glucose Concentration Based on Tunable Pulsed Laser
[1] [1] Su Ya, Meng Zhuo, Wang Longzhi, et al.. Correlation analysis and calibration of noninvasive blood glucose monitoring in vivo with optical coherence tomography[J]. Chinese J Lasers, 2014, 41(7): 0704002.
[2] [2] Narahara C D, Ishan B, Gajendra P S, et al.. Investigation of the specificity of Raman spectroscopy in non-invasive blood glucose measurements[J]. Analytical and Bioanalytical Chemistry, 2011, 400(9): 2871-2880.
[3] [3] Ansari R R, B ckle S, Rovati L. New optical scheme for a polarimetric-based glucose sensor[J]. Journal of Biomedical Optics, 2004, 9 (1): 103-115.
[4] [4] Larin K V, Eledrisi M S, Motamedi M, et al.. Non-invasive blood glucose monitoring with optical coherence tomography: A pilot study in human subjects[J]. Diabetes Care, 2002, 25(12): 2263-2267.
[5] [5] Li Qingbo, Zhang Lu, Wang Riyan, et al.. Near-infrared spectroscopy measurement of glucose concentrations in an aqueous matrixfundamental study on noninvasive measurement method of human blood glucose concentration[J]. Chinese Journal of Biomedical Engineering, 2004, 23(6): 561-601.
[6] [6] Li Q B, Li L N, Zhang G J. A nonlinear model for calibration of blood glucose noninvasive measurement using near infrared spectroscopy [J]. Infrared Physics & Technology, 2010, 53(5): 410-417.
[7] [7] Bednov A A, Savateeva E V, Oraevsky A A. Glucose monitoring in whole blood by measuring laser-induced acoustic profiles[C]. SPIE, 2003, 4960: 21-29.
[8] [8] Kottmann J, Rey J M, Sigrist M W. New photoacoustic cell design for studying aqueous solutions and gels[J]. Review of Scientific Instruments, 2011, 82(8): 084903.
[9] [9] Kottmann J, Rey J M, Luginbühl J, et al.. Glucose sensing in human epidermis using mid-infrared photoacoustic detection[J]. Biomedical Optics Express, 2012, 3(4): 667-680.
[10] [10] Pleitez M A, Lieblein T, Bauer A, et al.. In vivo non-invasive monitoring of glucose concentration in human epidermis by mid-infrared pulsed photoacoustic spectroscopy[J]. Analytical Chemistry, 2013, 85(2): 1013-1020.
[11] [11] Kottmann J, Grob U, Rey J M, et al.. Mid-infrared fiber-coupled photoacoustic sensor for biomedical applications[J]. Sensors, 2013, 13 (1): 535-549.
[12] [12] Boulnois J L. Photophysical processes in recent medical laser developments: A review[J]. Lasers in Medical Science, 1986, 1(1): 47-66.
[13] [13] Ashton H S, MacKenzie H A, Rae P, et al.. Blood glucose measurements by photoacoustics[C]. AIP Conference Proceedings, 1999, 463: 570-572.
[14] [14] Quan K M, Christison G B, Mac Kenzie H A, et al.. Glucose determination by a pulsed photoacoustic technique: An experimental study using a gelatin-based tissue phantom[J]. Physics Medicine Biology, 1993, 38(12): 1991-1922.
[15] [15] MacKenzie H A, Ashton H S, Spiers S, et al.. Advances in photoacoustic noninvasive glucose testing[J]. Clinical Chemistry, 1999, 45(9): 1587-1595.
[16] [16] Shen Y, Lu Z, Spiers S, et al.. Measurement of the optical absorption coefficient of a liquid by use of a time-resolved photoacoustic technique[J]. Applied Optics, 2000, 39(22): 4007-4012.
[17] [17] Zhao Z, Myllyl R. The effects of optical scattering on pulsed photoacoustic measurement in weakly absorbing liquids[J]. Measurement Science and Technology, 2001, 12(12): 2172-2177.
[18] [18] Zhao Z, Myllyl R. Measuring the optical parameters of weakly absorbing, highly turbid suspensions by a new technique: Photoacoustic detection of scattered light[J]. Applied Optics, 2005, 44(36): 7845-7852.
[19] [19] Zhao Z. Pulsed Photoacoustic Techniques and Glucose Determination in Human Blood and Tissue[D]. Finland: University of Oulu, 2002.
[20] [20] Kinnunen M, Myllyl R. Effect of glucose on photoacoustic signals at the wavelength of 1064 and 532 nm in pig blood and intraliquid [J]. Journal of Physics D: Applied Physics, 2005, 38(15): 2654-2661.
[21] [21] Christison G B, MacKenzie H A. Laser photoacoustic determination of physiological glucose concentrations in human whole blood[J]. Medical and Biological Engineering and Computing, 1993, 31(3): 284-290.
[22] [22] Shen Y C, MacKenzie H A, Lindberg J, et al.. Time-resolved photoacoustics for glucose concentration measurement: Theory and experiment [C]. SPIE, 1999, 3863: 167-171.
[23] [23] Ling Mingsheng, Qian Zhiyu. Research for blood glucose concentration monitoring technique by photoacoustic spectroscopy[J]. Journal of Biomedical Engineering Research, 2006, 5(4): 217-223.
[24] [24] Nelson E T, Patel C K N. Response of piezoelectric transducers used in pulsed optoacoustic spectroscopy[J]. Optics Letters, 1981, 6(7): 354-356.
[25] [25] Tam A C. Application of photoacoustic sensing techniques[J]. Reviews of Modern Physics, 1986, 58(2): 381-431.
[26] [26] Patel C K N, Tam A C. Pulsed optoacoustic spectroscopy of condensed matter[J]. Reviews of Modern Physics, 1981, 53(3): 517-550.
[27] [27] Diebold G J, Sun T. Properties of photoacoustic waves in one, two, and three dimensions[J]. Acustica, 1994, 80(4): 339-351.
[28] [28] Lai H M, Young K. Theory of the pulsed photoacoustic technique[J]. Journal of the Acoustical Society of America, 1982, 72(6): 2000- 2007.
[29] [29] He Junfeng, Kan Ruifeng, Xu Zhenyu, et al.. Derivative spectrum and concentration inversion algorithm of tunable diode laser absorption spectroscopy oxygen measurement[J]. Acta Optica Sinica, 2014, 30(4): 0430003.
[30] [30] Dong Jingjing, Chen Juan, Ge Yanru, et al.. Nondestructive identification of Panax notoginseng and its analogues via laser Raman spectroscopy[J]. Laser & Optoelectronics Progress, 2014, 51(5): 053002.
[31] [31] Dong Yongfang, Meng Yaoyong, Zhang Pingli, et al.. Accurate age estimation of bloodstains based on visible reflectance and genetic algorithm interval partial least squares[J]. Acta Optica Sinica, 2015, 35(8): 0830001.
[32] [32] Wang Fuyu, Zhao Jibin, Zhao Yuhui, et al.. Multiple regression analysis of the key parameters of laser engineering net shaping on residual stress[J]. Laser & Optoelectronics Progress, 2015, 52(1): 011403.
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Ren Zhong, Liu Guodong, Huang Zhen. Study on Photoacoustic Noninvasive Detection for Blood Glucose Concentration Based on Tunable Pulsed Laser[J]. Chinese Journal of Lasers, 2016, 43(2): 204001
Category: biomedical photonics and laser medicine
Received: May. 20, 2015
Accepted: --
Published Online: Jan. 25, 2016
The Author Email: Zhong Ren (renzhong0921@163.com)