Journal of Guangxi Normal University(Natural Science Edition) ›› 2026, Vol. 44 ›› Issue (5): 16-26.doi: 10.16088/j.issn.1001-6600.2026012101
• Physical and Electronic Engineering • Previous Articles Next Articles
Yang Zhen1,2,3,4*, Tang Yue1,2,3,4, Geng Zhaojie1,2,3,4, Yin Xu1,2,3,4, Huang Yong5
| [1] 高晓津, 杨进刚, 杨跃进, 等. 中国急性心肌梗死患者心血管病危险因素分析[J]. 中华高血压杂志, 2016, 24(1): 100. [2] Reed G W, Rossi J E, Cannon C P. Acute myocardial infarction[J]. The Lancet, 2017, 389(10065): 197-210. DOI: 10.1016/S0140-6736(16)30677-8. [3] Qureshi A, Roci I, Gurbuz Y, et al. An aptamer based competition assay for protein detection using CNT activated gold-interdigitated capacitor arrays[J]. Biosensors & Bioelectronics, 2012, 34(1): 165-170.DOI: 10.1016/j.bios.2012.01.038. [4] Liu G Z, Qi M, Zhang Y, et al. Nanocomposites of gold nanoparticles and graphene oxide towards an stable label-free electrochemical immunosensor for detection of cardiac marker troponin-I[J]. Analytica Chimica Acta, 2016, 909: 1-8. DOI: 10.1016/j.aca.2015.12.023. [5] Han X, Li S H, Peng Z L, et al. Recent development of cardiac troponin I detection[J]. ACS Sensors, 2016, 1(2): 106-114. DOI: 10.1021/acssensors.5b00318. [6] 张虹, 巩祥鹏, 韩泾鸿, 等. 微结构TRAIL生物传感器的研制[J]. 广西师范大学学报(自然科学版), 2005, 23(1): 92-94. DOI: 10.16088/j.issn.1001-6600.2005.01.023. [7] 卢昕. 生物传感器: 国内研究现状及发展动向[J]. 广西师范大学学报(自然科学版), 1995, 13(3): 61-65. [8] Wang R X, Zuo S S, Wu D, et al. Microplasma-assisted synthesis of colloidal gold nanoparticles and their use in the detection of cardiac troponin I (cTn-I)[J]. Plasma Processes and Polymers, 2015, 12(4): 380-391. DOI: 10.1002/ppap.201400127. [9] Osredkar J, Bajrić A, Moina H, et al. Cardiac troponins I and T as biomarkers of cardiomyocyte injury: advantages and disadvantages of each[J]. Applied Sciences, 2024, 14(14): 6007. DOI: 10.3390/app14146007. [10] Arumugasamy S K, Chellasamy G, Yun K, et al. Bio-quantum dots forelectrochemical sensing of cardiac biomarkers of acute myocardial infarction[J]. Journal of Industrial and Engineering Chemistry, 2024, 129: 488-498.DOI: 10.1016/j.jiec.2023.09.008. [11] Jimenez V O, Hwang K Y, Nguyen D, et al. Magnetoimpedance biosensors and real-time healthcare monitors: progress, opportunities, and challenges[J]. Biosensors, 2022, 12(7): 517. DOI: 10.3390/bios12070517. [12] Wang Z P, Su Q Z, Chen J, et al. Arrayed amorphous wire sensing system for large-area magnetic beads detection[J]. Journal of Magnetism and Magnetic Materials, 2026, 637: 173697. DOI: 10.1016/j.jmmm.2025.173697. [13] 张波, 闻小龙, 万亚东, 等. 基于Nb掺杂的Co基非晶丝GMI磁传感器[J]. 传感器与微系统, 2026, 45(3): 77-82. DOI: 10.13873/J.1000-9787(2026)03-0077-06. [14] 张波, 闻小龙, 万亚东, 等. 非晶丝GMI磁传感器微加工制造方法[J]. 电子与信息学报, 2025, 47(11): 4648-4654. [15] Kirat G, Erdoğan A, Ali Aksan M. GMI-based biosensor for the detection and quantification of doxorubicin anticancer drugs labeled to Fe3O4 superparamagnetic nanoparticles[J]. Sensors and Actuators A: Physical, 2024, 373: 115400. DOI: 10.1016/j.sna.2024.115400. [16] Sayad A, Uddin S M, Yao S, et al. A magnetoimpedance biosensor microfluidic platform for detection of glial fibrillary acidic protein in blood for acute stroke classification[J]. Biosensors & Bioelectronics, 2022, 211: 114410. DOI: 10.1016/j.bios.2022.114410. [17] Van Tuan N, Tam H A, Ngoc N T, et al. High-efficiency microfluidic chip integrated with micro-patterned planar spiral sensors for magnetic nanoparticle detection[J]. Lab on a Chip, 2025, 25(12): 2977-2989. [18] Kurlyandskaya G V, Sánchez M L, Hernando B, et al. Giant-magnetoimpedance-based sensitive element as a model for biosensors[J]. Applied Physics Letters, 2003, 82(18): 3053-3055. DOI: 10.1063/1.1571957. [19] Yang Z, Liu Y, Lei C, et al. A flexible giant magnetoimpedance-based biosensor for the determination of the biomarker C-reactive protein[J]. Microchimica Acta, 2015, 182(15): 2411-2417. DOI: 10.1007/s00604-015-1587-4. [20] Yang Z, Liu Y, Lei C, et al. Ultrasensitive detection and quantification of E. coli O157: H7 using a giant magnetoimpedance sensor in an open-surface microfluidic cavity covered with an antibody-modified gold surface[J]. Microchimica Acta, 2016, 183(6): 1831-1837. DOI: 10.1007/s00604-016-1818-3. [21] Wang T, Zhou Y, Lei C, et al. Magnetic impedance biosensor: a review[J]. Biosensors and Bioelectronics, 2017, 90: 418-435. DOI: 10.1016/j.bios.2016.10.031. [22] Feng Z, Zhi S T, Guo L, et al. An integrated magnetic microfluidic chip for rapid immunodetection of the prostate specific antigen using immunomagnetic beads[J]. Microchimica Acta, 2019, 186(4): 252. DOI: 10.1007/s00604-019-3349-1. [23] Sayad A, Skafidas E, Kwan P. Magneto-impedance biosensor sensitivity: effect and enhancement[J]. Sensors, 2020, 20(18): 5213. DOI: 10.3390/s20185213. [24] Sayad A, Uddin S M, Chan J X, et al. Meander thin-film biosensor fabrication to investigate the influence of structural parameters on the magneto-impedance effect[J]. Sensors, 2021, 21(19):6514. DOI: 10.3390/s21196514. [25] 韩自强, 张树玲, 王佩, 等. GMI磁传感器的灵敏度和噪声研究现状[J]. 功能材料, 2017, 48(11): 11032-11036. DOI: 10.3969/j.issn.1001-9731.2017.11.006. [26] 潘仲明, 周晗, 张大厦, 等. 国外巨磁阻抗传感器检测电路技术的发展动态[J]. 仪器仪表学报, 2017, 38(4): 781-793. DOI: 10.19650/j.cnki.cjsi.2017.04.001. [27] Zhu Y, Zhang Q, Li X, et al. Detection of AFP with an ultra-sensitive giant magnetoimpedance biosensor[J]. Sensors and Actuators B: Chemical, 2019, 293: 53-58. DOI: 10.1016/j.snb.2019.05.004. [28] Han C L, Xu M, Tang J S, et al. Giant magneto-impedance sensor with working point self-adaptation for unshielded human bio-magnetic detection[J]. Virtual Reality and Intelligent Hardware, 2022, 4(1): 38-54. [29] Barrera G, Celegato F, Vassallo M, et al. Microfluidic detection of SPIONs and co-ferrite ferrofluid using amorphous wire magneto-impedance sensor[J]. Sensors, 2024, 24(15):14. DOI: 10.3390/s24154902. [30] Tandon P, Sahu R, Mishra A C, et al. Magnetoimpedance effect in electrodeposited NiFe/Cu wire using trisodium citrate additive in plating bath[J]. Journal of Magnetism and Magnetic Materials, 2023, 570: 170490. DOI: 10.1016/j.jmmm.2023.170490. [31] Tandon P, Sahu R, Mishra A C. Giant magnetoimpedance effect in electrodeposited CoNiFe/Cu composite wire: Experimental study and analytical modelling[J]. Physica B: Condensed Matter, 2022, 642: 414131.DOI: 10.1016/j.physb.2022.414131. [32] Shi L Y, Ruan J Z, Zhang J, et al. Enhancement of giant magneto-impedance effect in Ni80Fe20/SiO2/Cu composite wires[J]. Physica B: Condensed Matter, 2009, 404(20): 3766-3770. DOI: 10.1016/j.physb.2009.06.139. [33] 辛诚. 基于铁磁非晶丝的叠层复合材料巨磁阻抗效应研究[D]. 西安: 西安工程大学, 2024. [34] Golubeva E V, Stepanova E A, Balymov K G, et al. Magnetic properties and the giant magnetoimpedance of amorphous co-based wires with acarbon coating[J]. Physics of Metals and Metallography, 2018, 119(4): 324-331. DOI: 10.1134/S0031918X1804004X. [35] Estevez D, Zhao Y J, Wang Y F, et al. Optimizing magnetoimpedance of amorphous microwires by nanocarbon-induced magnetic anisotropy[J]. Journal of Magnetism and Magnetic Materials, 2020, 502: 166527. DOI: 10.1016/j.jmmm.2020.166527. [36] Zou J T, Chen Y J, Shu X F, et al. Proper pH value enhances giant magneto-impedance effect of FINEMET/rGO composite ribbons by electroless plating[J]. Materials Science and Engineering: B, 2021, 265: 115004. DOI: 10.1016/j.mseb.2020.115004. [37] Vázquez M, Hernando A. A soft magnetic wire for sensor applications[J]. Journal of Physics D: Applied Physics, 1996, 29(4): 939-949. DOI: 10.1088/0022-3727/29/4/001. [38] 张振川, 段修生. GMI磁传感器敏感材料的研究进展[J]. 飞航导弹, 2017(4): 65-68, 84. DOI: 10.16338/j.issn.1009-1319.2017.04.15. [39] Phan M H, Peng H X. Giant magnetoimpedance materials: fundamentals and applications[J]. Progress in Materials Science, 2008, 53(2): 323-420. DOI: 10.1016/j.pmatsci.2007.05.003. [40] 张波, 吕广炎, 陈小丽, 等. 用于实验室环境磁场检测的高灵敏度GMI磁传感器研制[J]. 实验技术与管理, 2022, 39(11): 111-116. DOI: 10.16791/j.cnki.sjg.2022.11.019. [41] 李晟斌. 基于磁性非晶丝的柔性应变/磁场传感器研究[D]. 宁波: 中国科学院大学(中国科学院宁波材料技术与工程研究所), 2022. [42] 王涛. 基于磁阻抗效应的磁场传感器研究[D]. 兰州: 兰州大学, 2022. [43] 高瑞新. 钴基非晶丝间磁偶极相互作用的微磁学研究[J]. 磁性材料及器件, 2021, 52(6): 16-20. DOI: 10.19594/j.cnki.09.19701.2021.06.004. [44] 张振川, 段修生. 基于钴基非晶丝的巨磁阻抗效应多特征表征方法[J]. 科学技术与工程, 2018, 18(7): 159-165. [45] Yang Z, Chen J Y, Liu M Y, et al. An integrated magnetoimpedance biosensor microfluidic magnetic platform for the evaluation of the cardiac marker cTnI[J]. Analytical Methods, 2025, 17(5): 990-998. DOI: 10.1039/d4ay02021a. |
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