| [1] |
沈敏,刘伟,向平. 传承与创新视角下法医毒物学发展的实践与思考——以司法鉴定科学研究院法医毒物化学专业为例[J].中国司法鉴定,2020(3):49-58. doi:10.3969/j.issn.1671-2072.2020.03.009 .
|
|
SHEN M, LIU W, XIANG P. Practice and thinking on the development of forensic toxicology from the perspectives of heritage and innovation — Take the forensic toxicology specialty of Academy of Forensic Science as an example[J]. Zhongguo Sifa Jianding,2020(3):49-58.
|
| [2] |
汪娟. 串联质谱技术在法医毒物鉴定中的优势[J].工业微生物,2024,54(2):173-175. doi:10.3969/j.issn.1001-6678.2024.02.045 .
|
|
WANG J. Advantages of tandem mass spectrometry in forensic toxicology[J]. Gongye Weishengwu,2024,54(2):173-175.
|
| [3] |
ZHANG W P, WANG X, XIA Y, et al. Ambient ionization and miniature mass spectrometry systems for disease diagnosis and therapeutic monitoring[J]. Theranostics,2017,7(12):2968-2981. doi:10.7150/thno.19410 .
|
| [4] |
MANCHESTER K R, LOMAS E C, WATERS L, et al. The emergence of new psychoactive substance (NPS) benzodiazepines: A review[J]. Drug Test Anal,2018,10(1):37-53. doi:10.1002/dta.2211 .
|
| [5] |
GRAZIANO S, ANZILLOTTI L, MANNOCCHI G, et al. Screening methods for rapid determination of new psychoactive substances (NPS) in conventional and non-conventional biological matrices[J]. J Pharm Biomed Anal,2019,163:170-179. doi:10. 1016/j.jpba.2018.10.011 .
|
| [6] |
CHU Y H, BI Y L, JIANG S, et al. AI-assisted two-step enhanced SERS platform for rapid and ultra-sensitive detection of toxic molecules in biofluids[J]. Biosens Bioelectron,2025,289:117868. doi:10.1016/j.bios.2025.117868 .
|
| [7] |
MUSILE G, GRAZIOLI C, FORNASARO S, et al. Application of paper-based microfluidic analytical devices (µPAD) in forensic and clinical toxicology: A review[J]. Biosensors (Basel),2023,13(7):743. doi:10.3390/bios13070743 .
|
| [8] |
CHAUHAN N, SANKHLA M S, SHARMA A, et al. Nanotechnology-enhanced detection of illicit drugs: Development of nano sensors for rapid identification in liquid media[J]. J Electrochem Soc,2025,172(7):077505. doi:10.1149/1945-7111/ade7b6 .
|
| [9] |
YAN J, MI J Q, HE J T, et al. Development of an indirect competitive ELISA for the determination of papaverine[J]. Talanta,2005,66(4):1005-1011. doi:10.1016/j.talanta.2005.01.001 .
|
| [10] |
袁志杰,杨柳,郑文杰,等. 胶体金免疫层析技术的研究现状与前景[J].齐齐哈尔医学院学报,2015,36(1):84-85.
|
|
YUAN Z J, YANG L, ZHENG W J, et al. Research status and prospects of colloidal gold immunochromatography technology[J]. Qiqihaer Yixueyuan Xuebao,2015,36(1):84-85.
|
| [11] |
LEI X L, XU X X, LIU L Q, et al. Rapid quantitative determination of fentanyl in human urine and serum using a gold-based immunochromatographic strip sensor[J]. J Mater Chem B,2020,8(37):8573-8584. doi:10.1039/d0tb01509a .
|
| [12] |
WU B, LIU W J, CUI M W, et al. Design and development of a lanthanide-labeled immunochromatographic strip for simultaneous detection of morphine, methamphetamine and ketamine in hair[J]. Anal Methods,2023,15(42):5692-5699. doi:10. 1039/d3ay01280h .
|
| [13] |
司甜甜,赵薇,孙启慧,等. MOFs和COFs在选择性富集及色谱分离中药活性成分中的应用进展[J].分析测试学报,2025,44(1):82-90. doi:10.12452/j.fxcsxb.240813298 .
|
|
SI T T, ZHAO W, SUN Q H, et al. Advances in the application of MOFs and COFs for the selective enrichment and chromatographic separation of active ingredients in traditional Chinese medicine[J]. Fenxi Ceshi Xuebao,2025,44(1):82-90.
|
| [14] |
田一鸣,严一博,文迪,等. 新型功能材料在新精神活性物质快速检测中的研究进展[J].法医学杂志,2025,41(4):314-325. doi:10.12116/j.issn.1004-5619.2025.350605 .
|
|
TIAN Y M, YAN Y B, WEN D, et al. Research progress on the application of novel functional materials for rapid detection of new psychoactive substances[J]. Fayixue Zazhi,2025,41(4):314-325.
|
| [15] |
LI M, FAN Z J, GAO Q X, et al. Dual-atom catalyst Au@S-rGO for rapid and highly sensitive electrochemical detection of fentanyl in serum[J]. Adv Sci (Weinh),2025,12(18):2500430. doi:10.1002/advs.202500430 .
|
| [16] |
CAO S, XU Y F, YU Z Z, et al. A dual sensing platform for human exhaled breath enabled by Fe-MIL-101-NH2 metal-organic frameworks and its derived Co/Ni/Fe trimetallic oxides[J]. Small,2022,18(42):e2203715. doi:10.1002/smll.202203715 .
|
| [17] |
何泰伸,吕中将,孙一铭,等. 基于金纳米团簇-荧光素比率荧光探针的氰化物快速分析[J].法医学杂志,2025,41(4):340-347. doi:10.12116/j.issn.1004-5619.2025.350403 .
|
|
HE T S, LÜ Z J, SUN Y M, et al. Rapid analysis of cyanide based on a ratiometric fluorescent probe using gold nanoclusters-fluorescein[J]. Fayixue Zazhi,2025,41(4):340-347.
|
| [18] |
蒙化,阿华英,罗平馨,等. 聚胸腺嘧啶-铜纳米簇/适体-金纳米粒子荧光探针用于微囊藻毒素-LR传感分析[J].高等学校化学学报,2025,46(5):11-18. doi:10.7503/cjcu20250008 .
|
|
MENG H, A H Y, LUO P X, et al. Fluorescent probe for detection of microcystin-LR based on poly (thymidine)-copper nanoclusters and aptamer-gold nanoparticles[J]. Gaodeng Xuexiao Huaxue Xue-bao,2025,46(5):11-18.
|
| [19] |
LIAO H Y, LI J H, WANG F, et al. Ion-imprinting strategy towards a novel two-in-one copper-based nanozyme for sensitive electrochemical-colorimetric dual-mode detection of paracetamol[J]. Biosens Bioelectron,2025,280:117454. doi:10.1016/j.bios.2025.117454 .
|
| [20] |
李嘉豪,凌江,蔡子豪,等. 基于铜纳米酶和分子印迹技术的替来他明快速检测荧光探针开发[J].法医学杂志,2025,41(4):355-363. doi:10.12116/j.issn.1004-5619.2025.350410 .
|
|
LI J H, LING J, CAI Z H, et al. Fluorescent probe development for rapid detection of tiletamine based on copper nanozyme and molecular imprinting technology[J]. Fayixue Zazhi,2025,41(4):355-363.
|
| [21] |
MOHSENI N, BAHRAM M. Mean centering of ratio spectra for colorimetric determination of morphine and codeine in pharmaceuticals and biological samples using melamine modified gold nanoparticles[J]. Anal Methods,2016,8(37):6739-6747. doi:10.1039/C6AY02091G .
|
| [22] |
韦丽霞,刘波,杨小圆,等. 基于核酸适配体功能化氧化石墨烯荧光传感器检测氯胺酮及去甲氯胺酮[J].法医学杂志,2025,41(4):326-339. doi:10.12116/j.issn.1004-5619.2025.350409 .
|
|
WEI L X, LIU B, YANG X Y, et al. Detection of ketamine and norketamine using an aptamer-functionalized graphene oxide fluorescent sensor[J]. Fayixue Zazhi,2025,41(4):326-339.
|
| [23] |
郭紫雯,邱天禹,曹玥. 基于表面增强拉曼光谱与机器学习的依托咪酯及其结构类似物的快速鉴识[J].法医学杂志,2025,41(4):364-370. doi:10.12116/j.issn.1004-5619.2025.350703 .
|
|
GUO Z W, QIU T Y, CAO Y. Rapid identification of etomidate and its structural analogues based on surface-enhanced raman spectroscopy and machine learning[J]. Fayixue Zazhi,2025,41(4):364-370.
|
| [24] |
RUAN H W, SONG G Y, FAN Z G, et al. Continuous atmospheric pressure interfaced ion trap mass spectrometry with thermal desorption for detection of nonvolatile drugs[J]. Talanta,2025,282:126975. doi:10.1016/j.talanta.2024.126975 .
|
| [25] |
CHANG C, MONJARDEZ G, DAVIDSON J T. Assessment of a combined handheld Raman spectroscopy and transportable mass spectrometry approach for the analysis of seized drug mixtures[J]. Forensic Sci Int,2025,372:112512. doi:10.1016/j.forsciint.2025.112512 .
|
| [26] |
唐梦瑶,黄博宇,刘翠梅,等. 基于便携式质谱仪的依托咪酯及其类似物的快速筛查[J].法医学杂志,2025,41(4):348-354. doi:10.12116/j.issn.1004-5619.2025.350402 .
|
|
TANG M Y, HUANG B Y, LIU C M, et al. Rapid screening of etomidate and its analogues using a portable mass spectrometer[J]. Fayixue Zazhi,2025,41(4):348-354.
|
| [27] |
WANG R, SHI K H, LIU J, et al. Water-accelerated transport: Vapor-phase nerve agent simulant delivery within a catalytic zirconium metal-organic framework as a function of relative humidity[J]. J Am Chem Soc,2023,145(25):13979-13988. doi:10.1021/jacs. 3c03708 .
|
| [28] |
WANG M M, ZHANG H J, YAN S S, et al. Fabrication of MOF-based Nanozyme sensor arrays and their application in disease diagnosis[J]. Coord Chem Rev,2025,532:216506. doi:10.1016/j.ccr.2025. 216506 .
|
| [29] |
BELADONA S U M, SAPUTRA R R, PATAH A, et al. The versatility of metal-organic frameworks-based biosensor for antioxidant detection[J]. Talanta Open,2025,12:100566. doi:10.1016/j.talo.2025.100566 .
|