索引超出了数组界限。
[1] Sachdeva S, Davis RW, Saha AK. Microfluidic point-of-care
testing: commercial landscape and future directions[J]. Front
Bioeng Biotechnol, 2020, 8:602659.
[2] Males RG, Stephenson J, Harris P. Cardiac markers and point-ofcare
testing: a perfect fit[J]. Crit Care Nurs Q, 2001, 24(1):54-61.
[3] Savi?on-Flores AI, Savi?on-Flores F, Trejo G, et al. A review
of cardiac troponin I detection by surface enhanced Raman
spectroscopy: under the spotlight of point-of-care testing[J].
Front Chem, 2022, 10:1017305.
[4] Yang Z, Min Zhou D. Cardiac markers and their point-of-care
testing for diagnosis of acute myocardial infarction[J]. Clin
Biochem, 2006, 39(8):771-780.
[5] Regan B, O'Kennedy R, Collins D. Advances in point-of-care
testing for cardiovascular diseases[J]. Adv Clin Chem, 2021,
104:1-70.
[6] Khachornsakkul K, Dungchai W. Rapid distance-based cardiac
troponin quantification using paper analytical devices for the
screening and the follow-up of acute myocardial infarction,
using a single drop of human whole blood[J]. ACS Sens, 2021,
6(3):1339-1347.
[7] Vasantham S, Alhans R, Singhal C, et al. Paper based point of
care immunosensor for the impedimetric detection of cardiac
troponin I biomarker[J]. Biomed Microdevices, 2019, 22(1):6.
[8] Hu J, Cui XY, Gong Y, et al. Portable microfluidic and smartphonebased
devices for monitoring of cardiovascular diseases at the
point of care[J]. Biotechnol Adv, 2016, 34(3):305-320.
[9] 苏文涛, 冯可, 秦建华. 微流控芯片在心肌标志物检测中的研
究进展[J]. 分析化学, 2015, 43(10):1490-1498.
[10] Azzouz A, Hejji L, Sonne C, et al. Nanomaterial-based
aptasensors as an efficient substitute for cardiovascular disease
diagnosis: future of smart biosensors[J]. Biosens Bioelectron,
2021, 193:113617.
[11] Nezami A, Dehghani S, Nosrati R, et al. Nanomaterial-based
biosensors and immunosensors for quantitative determination of
cardiac troponins[J]. J Pharm Biomed Anal, 2018, 159:425-436.
[12] 高晨曦, 陈清勇. 可穿戴设备用于心房颤动筛查的有效性系统
评价[J]. 中华全科医学, 2022, 20(7):1230-1234.
[13] Suntornsuk W, Suntornsuk L. Recent applications of paper-based
point-of-care devices for biomarker detection[J]. Electrophoresis,
2020, 41(5/6):287-305.
[14] Colozza N, Caratelli V, Moscone D, et al. Origami paper-based
electrochemical (Bio)sensors: state of the art and perspective[J].
Biosensors (Basel), 2021, 11(9):328.
[15] Ren YG, Liu MC, Ji MZ, et al. Rapid detection of human hearttype
fatty acid-binding protein in human plasma and blood using
a colloidal gold-based lateral flow immunoassay[J]. Exp Ther
Med, 2021, 22(5):1238.
[16] 廖佳敏, 杨华, 孙鹏宇, 等. 生物传感器发展研究综述[J]. 中国
高新科技, 2022, (12):118-120.
[17] 潘宇祥. 生物传感器的研究进展综述[J]. 生物技术世界, 2014,
(3):127.
[18] Khushaim W, Vijjapu MT, Yuvaraja S, et al. Graphitic carbon
nitride and IGZO Bio-FET for rapid diagnosis of myocardial
infarction[J]. Biosensors (Basel), 2022, 12(10):836.
[19] Shen JN, Zhang LY, Yuan JJ, et al. Digital microfluidic thermal
control chip-based multichannel immunosensor for noninvasively
detecting acute myocardial infarction[J]. Anal Chem, 2021,
93(45):15033-15041.
[20] 陈桂芳, 楚华星, 邢喆, 等. 荧光免疫微流定量检测急性心肌
梗死三联的性能及诊断效果评价[J]. 检验医学与临床, 2020,
17(5):596-599.
[21] Bayoumy K, Gaber M, Elshafeey A, et al. Smart wearable
devices in cardiovascular care: where we are and how to move
forward[J]. Nat Rev Cardiol, 2021, 18(8):581-599.
[22] Hong YJ, Jeong H, Cho KW, et al. Wearable and implantable
devices for cardiovascular healthcare: from monitoring to therapy
based on flexible and stretchable electronics[J]. Adv Funct Mater,
2019, 29(19):1808247.
[23] Cai S, Xu XJ, Yang W, et al. Materials and designs for wearable
photodetectors[J]. Adv Mater, 2019, 31(18):e1808138.
[24] Dunn J, Runge R, Snyder M. Wearables and the medical
revolution[J]. Per Med, 2018, 15(5):429-448.
[25] Gao Y, Li H, Luo Y. An empirical study of wearable technology
acceptance in healthcare[J]. Ind Manage Data Syst, 2015,
115(9):1704-1723.