参考文献/References:
[1].World Health Organization. Urgent action needed as global diabetes cases increase four-fold over past decades[EB/OL]. https://www.who.int/news/item/13-11-2024-urgent-action-needed-as-global-diabetes-cases-increase-four-fold-over-past-decades, 2024-11-13/2025-03-03.
[2].GBD 2021 Diabetes Collaborators. Global, regional, and national burden of diabetes from 1990 to 2021, with projections of prevalence to 2050: A systematic analysis for the global burden of disease study 2021[J]. Lancet, 2023, 402(10397): 203-234.
[3].Sun H, Saeedi P, Karuranga S, et al. IDF diabetes atlas: Global, regional and country-level diabetes prevalence estimates for 2021 and projections for 2045[J]. Diabetes Research and Clinical Practice, 2022, 183: 109119.
[4].Wang H, Sheng T, Zhao S, et al. Recent advances in transdermal sensors for glucose monitoring[J]. Current Opinion in Biomedical Engineering, 2021, 20: 100326.
[5].Li G L, Wen D. Sensing nanomaterials of wearable glucose sensors[J]. Chinese Chemical Letters, 2021, 32(1): 221-228.
[6].Huang Q, Chen J Q, Zhao Y N, et al. Advancements in electrochemical glucose sensors[J]. Talanta, 2025, 281: 126897.
[7].Wang M, You Z H, Li F G, et al. Recent advances in materials for enzyme-free electrochemical glucose sensors[J]. Sensors and Materials, 2023, 35(3): 1001-1022.
[8].Saha T, Del C R, Mahato K, et al. Wearable electrochemical glucose sensors in diabetes management: A comprehensive review[J]. Chemical Reviews, 2023, 123(12): 7854-7889.
[9].Yang J W, Liang X Y, Cui L, et al. A novel non-enzymatic glucose sensor based on Pt3Ru1 alloy nanoparticles with high density of surface defects[J]. Biosensors and Bioelectronics, 2016, 80: 171-174.
[10].Wang R L, Liang X Y, Liu H Y, et al. Non-enzymatic electrochemical glucose sensor based on monodispersed stone-like PtNi alloy nanoparticles[J]. Microchimica Acta, 2018, 185(7): 339.
[11].Han W T, Zhang X Y, Wang R L, et al. Non-enzymatic electrochemical glucose sensor based on Pt2Pd1 alloy nanocrystals with high-index facets[J]. Journal of Alloys and Compounds, 2023, 936: 168287.
[12].Prathap M U A, Kaur B, Srivastava R. Hydrothermal synthesis of CuO micro-/nanostructures and their applications in the oxidative degradation of methylene blue and non-enzymatic sensing of glucose/H2O2[J]. Journal of Colloid and Interface Science, 2012, 370(1): 144- 154.
[13].Liu T J, Guo Y Q, Zhang Z F, et al. Fabrication of hollow CuO/PANI hybrid nanofibers for non-enzymatic electrochemical detection of H2O2 and glucose[J]. Sensors and Actuators B: Chemical, 2019, 286: 370-376.
[14].Li S, Zheng Y J, Qin G W, et al. Enzyme-free amperometric sensing of hydrogen peroxide and glucose at a hierarchical Cu2O modified electrode[J]. Talanta, 2011, 85(3): 1260-1264.
[15].Wang F F, Liu L Q, Li W J. Graphene-based glucose sensors: A brief review[J]. IEEE Transactions on NanoBioscience, 2015, 14(8): 818-834.
[16].Zhang C M, Zhang Z W, Yang Q, et al. Graphene-based electrochemical glucose sensors: fabrication and sensing properties[J]. Electroanalysis, 2018, 30(11): 2504-2524.
[17].Gricar E, Radic J, Genorio B, et al. Highly sensitive and selective graphene nanoribbon based enzymatic glucose screen-printed electrochemical sensor[J]. Sensors, 2022, 22(24): 9590.
[18].Li P P, Peng Y, Cai J P, et al. Recent advances in metal-organic frameworks (MOFs) and their composites for non-enzymatic electrochemical glucose sensors[J]. Bioengineering, 2023, 10(6): 733.
[19].Wang F, Hu J, Liu Y, et al. Turning coordination environment of 2D nickel-based metal-organic frameworks by π-conjugated molecule for enhancing glucose electrochemical sensor performance[J]. Materials Today Chemistry, 2022, 24: 100885.
[20].Wang B F, Luo Y Y, Gao L, et al. High-performance field-effect transistor glucose biosensors based on bimetallic Ni/Cu metal-organic frameworks[J]. Biosensors and Bioelectronics, 2021, 171: 112736.
[21].曹晓晨, 原梅妮, 丁聪明. 超级电容器用NiCo-LDH电极材料研究进展[J]. 电池, 2023, 53(3): 342-346.
[22].Mousty C, Prévot V. Hybrid and biohybrid layered double hydroxides for electrochemical analysis[J]. Analytical and Bioanalytical Chemistry, 2013, 405(11): 3513–3523.
[23].刘敬春, 赵子晔, 赵建国, 等. AZ31B镁合金表面电化学沉积LDH涂层及其耐腐蚀性能研究[J]. 电镀与精饰, 2024, 46(7): 22-30.
[24].Sohrabi H, Dezhakam E, Nozohouri E, et al. Advances in layered double hydroxide based labels for signal amplification in ultrasensitive electrochemical and optical affinity biosensors of glucose[J]. Chemosphere, 2022, 309: 136633.
[25].Rossini P D O, Laza A, Azeredo N F B, et al. Ni-based double hydroxides as electrocatalysts in chemical sensors: A review[J]. Trends in Analytical Chemistry, 2020, 126: 115859.
[26].Ge X, Gu C D, Yin Z Y, et al. Periodic stacking of 2D charged sheets: Self-assembled superlattice of Ni-Al layered double hydroxide (LDH) and reduced graphene oxide[J]. Nano Energy, 2016, 20: 185-193.
[27].Chen Z B, Guo J X, Zhou T, et al. A novel nonenzymatic electrochemical glucose sensor modi?ed with Ni/Al layered double hydroxide[J]. Electrochimica Acta, 2013, 109: 532-535.
[28].Wang F F, Zhang Y W, Liang W X, et al. Non-enzymatic glucose sensor with high sensitivity based on Cu-Al layered double hydroxides[J]. Sensors and Actuators: B. Chemical, 2018, 273: 41-47.
[29].Lu Y, Jiang B, Fang L, et al. Highly sensitive nonenzymatic glucose sensor based on 3D ultrathin NiFe layered double hydroxide nanosheets[J]. Electroanalysis, 2017, 29(7): 1755-1761.
[30].Chandrasekaran N I, Matheswaran M. A sensitive and selective non-enzymatic glucose sensor with hollow Ni-Al-Mn layered triple hydroxide nanocomposites modi?ed Ni foam[J]. Sensors and Actuators: B. Chemical, 2019, 288: 188-194.
[31].Cui J Y, Li Z H, Liu K, et al. A bifunctional nonenzymatic ?exible glucose microsensor based on CoFe-layered double hydroxide[J]. Nanoscale Advances, 2019, 1(3): 948-952.
[32].Wang X D, Zheng Y Y, Yuan J H, et al. Three-dimensional NiCo layered double hydroxide nanosheets array on carbon cloth, facile preparation and its application in highly sensitive enzymeless glucose detection[J]. Electrochimica Acta, 2017, 224: 628-635.
[33].Xu J Q, Qiao X J, Arsalan M, et al. Preparation of one dimensional silver nanowire/nickel-cobalt layered double hydroxide and its electrocatalysis of glucose[J]. Journal of Electroanalytical Chemistry, 2018, 823: 315-321.
[34].Fu S, Fan G L, Yang L, et al. Non-enzymatic glucose sensor based on Au nanoparticles decorated ternary Ni-Al layered double hydroxide/single-walled carbon nanotubes/graphene nanocomposite[J]. Electrochimica Acta, 2015, 152: 146- 154.
[35].Ra?que N, Asif A H, Hirani R A K, et al. Binder free 3D core-shell NiFe layered double hydroxide (LDH) nanosheets (NSs) supported on Cu foam as a highly ef?cient nonenzymatic glucose sensor[J]. Journal of Colloid and Interface Science, 2022, 615: 865-875.
[36].Chen J, Sheng Q L, Wang Y, et al. Dispersed nickel nanoparticles on flower-like layered nickel-cobalt double hydroxides for non-enzymic amperometric sensing of glucose[J]. Electroanalysis, 2016, 28(5): 979-984.
[37].Shishegari N, Sabahi A, Manteghi F, et al. Non-enzymatic sensor based on nitrogen-doped graphene modi?ed with Pd nano-particles and NiAl layered double hydroxide for glucose determination in blood[J]. Journal of Electroanalytical Chemistry, 2020, 871: 114285.
[38].Long B J, Cao P Y, Zhao Y M, et al. Pt1/Ni6Co1 layered double hydroxides/N-doped graphene for electrochemical non-enzymatic glucose sensing by synergistic enhancement of single atoms and doping[J]. Nano Research, 2023, 16(1): 318-324.
[39].Lo C T, Wu Y S , Huang S M, et al. Carbon fibre-supported hierarchical NiCo layered double hydroxide nanosheets as non-enzymatic glucose sensors for sport drinks and serum[J]. Food Chemistry, 2022, 383: 132383.
[40].Gualandi I, Vlamidis Y, Mazzei L, et al. Ni/Al layered double hydroxide and carbon nanomaterial composites for glucose sensing[J]. ACS Applied Nano Materials, 2019, 2(1): 143-155.
[41].Zhou J, Min M K, Liu Y, et al. Layered assembly of NiMn-layered double hydroxide on graphene oxide for enhanced non-enzymatic sugars and hydrogen peroxide detection[J]. Sensors and Actuators B, 2018, 260: 408-417.
[42].Samuei S, Fakkar J, Rezvani Z, et al. Synthesis and characterization of graphene quantum dots/CoNiAl-layered double-hydroxide nanocomposite: Application as a glucose sensor[J]. Analytical Biochemistry, 2017, 521: 31-39.
[43].Moolayadukkam S, Thomas S, Sahoo R C, et al. Role of transition metals in layered double hydroxides for differentiating the oxygen evolution and non-enzymatic glucose sensing[J]. ACS Applied Materials and Interfaces, 2020, 12(5): 6193-6204.
[44].Wei Y H, Hui Y X, Lu X J, et al. One-pot preparation of NiMn layered double hydroxide-MOF material for highly sensitive electrochemical sensing of glucose[J]. Journal of Electroanalytical Chemistry, 2023, 933: 117276.
[45].Zhu R M, Song Y Z, Hu J L, et al. Conductive metal-organic framework grown on the nickel-based hydroxide to realize high-performance electrochemical glucose sensing[J]. Chemistry-A European Journal, 2024, 30(31): e202400982.
[46].Kong X Y, Xia B, XiaoY W, et al. Regulation of cobalt-nickel LDHs’ structure and components for optimizing the performance of an electrochemical sensor[J]. ACS Applied Nano Materials, 2019, 2(10): 6387-6396.
[47].Zhang Y, He Z Y, Dong Q Y, et al. 3D CoxP@NiCo-LDH heteronanosheet array: As a high sensitivity sensor for glucose[J]. Microchemical Journal, 2022, 172: 106923.
[48].An S Y, Shang N Z, Chen B Y, et al. Co-Ni layered double hydroxides wrapped on leaf-shaped copper oxide hybrids for non-enzymatic detection of glucose[J]. Journal of Colloid and Interface Science, 2021, 592: 205-214.
[49].Chu D W, Li F B, Song X M, et al. A novel dual-tasking hollow cube NiFe2O4-NiCo-LDH@rGO hierarchical material for high preformance supercapacitor and glucose sensor[J]. Journal of Colloid and Interface Science, 2020, 568: 130-138.
[50].Li M H, Fang L, Zhou H, et al. Three-dimensional porous MXene/NiCo-LDH composite for high performance non-enzymatic glucose sensor[J]. Applied Surface Science, 2019, 495: 143554.
[51].Ni G, Cheng J, Dai X, et al. Integrating ultrathin polypyrrole framework on nickel-cobalt layered double hydroxide as an amperometric sensor for non-enzymatic glucose determination[J]. Electroanalysis, 2018, 30(10): 1-9.
[52].Song D D, Wang L L, Wang B, et al. Three-dimensional hierarchical structure NiFe layered double hydroxides nanosheets based on carbon cloth for high performance non-enzymatic glucose detection[J]. International Journal of Electrochemical Science, 2020, 15(3): 1949-1963.
[53].Ai H H, Huang X T, Zhu Z H, et al. A novel glucose sensor based on monodispersed Ni/Al layered double hydroxide and chitosan[J]. Biosensors and Bioelectronics, 2008, 24(4): 1048-1052.
[54].Wu H Q, Yan L, Fu L Y, et al. Fabrication and electrochemical properties of alizarin-aminophenylboronic acid ensembled with layered double hydroxide for glucose sensing selectivity[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2019, 560: 92-97.
[55].Amin K M, Muench F, Kunz U, et al. 3D NiCo-layered double hydroxide@Ni nanotube networks as integrated free-standing electrodes for nonenzymatic glucose sensing[J]. Journal of Colloid and Interface Science, 2021, 591: 384-395.
[56].Hai B, Zou Y Q. Carbon cloth supported NiAl-layered double hydroxides for ?exible application and highly sensitive electrochemical sensors[J]. Sensors and Actuators B, 2015, 208: 143-150.
[57].Kumar P A, Stanley J, Babu T G S, et al. Synthesis of nickel-aluminium layered double hydroxide and its application in non-enzymatic glucose sensing[J]. Materials Today: Proceedings, 2018, 5: 16125-16131.
[58].Scavetta E, Casagrande A, Gualandi I, et al. Analytical performances of Ni LDH ?lms electrochemically deposited on Pt surfaces: Phenol and glucose detection[J]. Journal of Electroanalytical Chemistry, 2014, 722: 15-22.
[59].Li X, Liu J P, Ji X X, et al. Ni/Al layered double hydroxide nanosheet ?lm grown directly on Ti substrate and its application for a nonenzymatic glucose sensor[J]. Sensors and Actuators B, 2010, 147(1): 241-247.
[60].Sun F C, Wang S T, Wang Y Q, et al. Synthesis of Ni-Co hydroxide nanosheets constructed hollow cubes for electrochemical glucose determination[J]. Sensors, 2019, 19(13): 2938.
[61].Shen M, Li W, Chen L, et al. NiCo-LDH nanoflake arrays-supported Au nanoparticles on copper foam as a highly sensitive electrochemical non-enzymatic glucose sensor[J]. Analytica Chimica Acta, 2021, 1177: 338787.
[62].Wang L L, Miao X L, Qu Y N, et al. Rattle-type Au@NiCo LDH hollow core-shell nanostructures for nonenzymatic glucose sensing[J]. Journal of Electroanalytical Chemistry, 2020, 858: 113810.
[63].Tang X, Zhang Y, Wu J Y, et al. Ultrafast construction of 3D ultrathin NiCo-LDH@Cu heteronanosheet array by plasma magnetron sputtering for non-enzymatic glucose sensing in beverage and human serum[J]. Food Chemistry, 2022, 393: 133399.
[64].Scavetta E, Stipa S, Tonell D. Electrodeposition of a nickel-based hydrotalcite on Pt nanoparticles for ethanol and glucose sensing[J]. Electrochemistry Communications, 2007, 9(12): 2838-2842.
[65].Fu R, Lu Y L, Ding Y P, et al. A novel non-enzymatic glucose electrochemical sensor based on CNF@Ni-Co layered double hydroxide modified glassy carbon electrode[J]. Microchemical Journal, 2019, 150: 104106.
[66].Hai B, Zou Y Q, Guo G B, et al. A novel strategy to prepare LDH networks loaded carbon structure by C-MEMS techniques for glucose detection[J]. Chinese Chemical Letters, 2017, 28(1): 149-152.
[67].Asadian E, Shahrokhian S, Zad A I. Highly sensitive nonenzymetic glucose sensing platform based on MOF-derived NiCo LDH nanosheets/graphene nanoribbons composite[J]. Journal of Electroanalytical Chemistry, 2018, 808: 114-123.
[68].Shahrokhian S, Sanati E K, Hosseini H. Advanced on-site glucose sensing platform based on a new architecture of free-standing hollow Cu(OH)2 nanotubes decorated with CoNi-LDH nanosheets on graphite screen-printed electrode[J]. Nanoscale, 2019, 11(26): 12655-12671.
[69].Zhao Z T, Sun Y J, Song J X, et al. Highly sensitive nonenzymetic glucose sensing based on multicomponent hierarchical NiCo-LDH/CCCH/CuF nanostructures[J]. Sensors and Actuators: B. Chemical, 2021, 326: 128811.
[70].Song D D, Wang L L, Qu Y N, et al. A high-performance three-dimensional hierarchical structure MOF-derived NiCo LDH nanosheets for non-enzymatic glucose detection[J]. Journal of The Electrochemical Society, 2019, 166(16): B1681-B1688.
[71].Tang S, Lee, H K. Application of dissolvable layered double hydroxides as sorbent in dispersive solid-phase extraction and extraction by co-precipitation for the determination of aromatic acid anions[J]. Analytical Chemistry, 2013, 85(15): 7426-7433.
[72].Zhang F, Liu Z G, Zeng R C, et al. Corrosion resistance of Mg-Al-LDH coating on magnesium alloy AZ31[J]. Surface and Coatings Technology, 2014, 258, 1152-1158.
[73].Zhan T R, Song Y, Li X J, et al. Electrochemical sensor for bisphenol a based on ionic liquid functionalized Zn-Al layered double hydroxide modified electrode[J]. Materials Science and Engineering C-Materials for Biological Applications, 2016, 64: 354-361.
[74].Hibino T, Ohya H. Synthesis of crystalline layered double hydroxides: Precipitation by using urea hydrolysis and subsequent hydrothermal reactions in aqueous solutions[J]. Applied Clay Science, 2009, 45(3): 123-132.
[75].Rao M M, Reddy B R, Jayalakshmi M, et al. Hydrothermal synthesis of Mg-Al hydrotalcites by urea hydrolysis[J]. Materials Research Bulletin. 2005, 40(2): 347-359.
[76].Naseem S, Gevers B, Boldt R, et al. Comparison of transition metal (Fe, Co, Ni, Cu, and Zn) containing tri-metal layered double hydroxides (LDHs) prepared by urea hydrolysis[J]. RSC Advances, 2019, 9(6): 3030-3040.
[77].Jing, F L, Zhang Y Y, Luo S Z, et al. Nano-size MZnAl (M = Cu, Co, Ni) metal oxides obtained by combining hydrothermal synthesis with urea homogeneous precipitation procedures[J]. Applied Clay Science, 2010, 48(1/2): 203-207.
[78].Prevot V, Caperaa N, Taviot-Guého C, et al. Glycine-assisted hydrothermal synthesis of NiAl-layered double hydroxide nanostructures[J]. Crystal Growth and Design, 2009, 9(8): 3646-3654.
[79].Iyi N, Sasaki T. Deintercalation of carbonate ions and anion exchange of an Al-rich MgAl-LDH (layered double hydroxide)[J]. Applied Clay Science, 2008, 42(1/2): 246-251.
[80].Sasai R, Morita M. Luminous relative humidity sensing by anionic fluorescein dyes incorporated into layered double hydroxide/1-butanesulfonate hybrid materials[J]. Sensors and Actuators B: Chemical, 2017, 238: 702-705.