On Non-Invasive Glucose Measurements

被引:1
作者
Aroutiounian, V. M. [1 ]
机构
[1] Yerevan State Univ, Yerevan, Armenia
关键词
glucose; diabetes; noninvasive method; bio-impedance; skin; near IR range; Raman scattering; polarization vector; MULTISENSOR SYSTEM; BLOOD-GLUCOSE; SENSORS; FREQUENCY; SIMULATION; LIGHT;
D O I
10.1134/S1068337222040041
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Conventional glucose testing methods require the analysis of a droplet of blood from the patient's finger, which is painful and inconvenient. Such a one-time method carries an infectious risk and is not suitable for the long-term, daily continuous glucose monitoring often required today. Continuous glucose monitoring can provide timely information about the success of therapy during treatment and make appropriate adjustments. Currently, there is no single method of continuous monitoring. Currently, there is no single method of continuous monitoring. Glucose concentrations, although different kinds of non-invasive sensors have been developed for such monitoring on different physical principles. Such devices can provide painless, risk-free, inexpensive and frequent testing. This article discusses recent advances in non-invasive glucose control techniques.
引用
收藏
页码:405 / 416
页数:12
相关论文
共 61 条
[41]   Measuring depth depends on frequency in electrical skin impedance measurements [J].
Martinsen, Orjan G. ;
Grimnes, Sverre ;
Haug, Erlend .
SKIN RESEARCH AND TECHNOLOGY, 1999, 5 (03) :179-181
[42]   Optical glucose sensing in biological fluids:: an overview [J].
McNichols, RJ ;
Coté, GL .
JOURNAL OF BIOMEDICAL OPTICS, 2000, 5 (01) :5-16
[43]  
Mueller Martin, 2011, J Diabetes Sci Technol, V5, P694
[44]   Noninvasive Monitoring of Blood Glucose with Raman Spectroscopy [J].
Pandey, Rishikesh ;
Paidi, Santosh Kumar ;
Valdez, Tulio A. ;
Zhang, Chi ;
Spegazzini, Nicolas ;
Dasari, Ramachandra Rao ;
Barman, Ishan .
ACCOUNTS OF CHEMICAL RESEARCH, 2017, 50 (02) :264-272
[45]   In Vivo Noninvasive Monitoring of Glucose Concentration in Human Epidermis by Mid-Infrared Pulsed Photoacoustic Spectroscopy [J].
Pleitez, Miguel A. ;
Lieblein, Tobias ;
Bauer, Alexander ;
Hertzberg, Otto ;
von Lilienfeld-Toal, Hermann ;
Maentele, Werner .
ANALYTICAL CHEMISTRY, 2013, 85 (02) :1013-1020
[46]   Blood Glucose Level Estimation Using Interdigital Electrodes [J].
Pockevicius, V. ;
Markevicius, V. ;
Cepenas, M. ;
Andriukaitis, D. ;
Navikas, D. .
ELEKTRONIKA IR ELEKTROTECHNIKA, 2013, 19 (06) :71-74
[47]   NON-INVASIVE GLUCOSE MONITORING OF THE AQUEOUS-HUMOR OF THE EYE .1. MEASUREMENT OF VERY SMALL OPTICAL ROTATIONS [J].
RABINOVITCH, B ;
MARCH, WF ;
ADAMS, RL .
DIABETES CARE, 1982, 5 (03) :254-258
[48]   Measurement and modeling of the transient difference between blood and subcutaneous glucose concentrations in the rat after injection of insulin [J].
Schmidtke, DW ;
Freeland, AC ;
Heller, A ;
Bonnecaze, RT .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1998, 95 (01) :294-299
[49]   "Smart" Continuous Glucose Monitoring Sensors: On-Line Signal Processing Issues [J].
Sparacino, Giovanni ;
Facchinetti, Andrea ;
Cobelli, Claudio .
SENSORS, 2010, 10 (07) :6751-6772
[50]   Spectroscopic approach for dynamic bioanalyte tracking with minimal concentration information [J].
Spegazzini, Nicolas ;
Barman, Ishan ;
Dingari, Narahara Chari ;
Pandey, Rishikesh ;
Soares, Jaqueline S. ;
Ozaki, Yukihiro ;
Dasari, Ramachandra Rao .
SCIENTIFIC REPORTS, 2014, 4