-
[1]
NEMAKAL M, ARALEKALLU S, MOHAMMED I, PARI M, REDDY K R V, SANNEGOWDA L K S. Nanomolar detection of 4-aminophenol using amperometric sensor based on a novel phthalocyanine[J]. Electrochim. Acta, 2019, 318, 342-353
doi: 10.1016/j.electacta.2019.06.097
-
[2]
LI Y H, ZHANG M T, HUANG Y T, ZHAO P C, ZHAO J Y, FEI J J, XIE Y X. An ultrasensitive 4-Aminophenol electrochemical sensors based on zinc and nitrogen-doped γ-cyclodextrin composites[J]. Microchem. J., 2024, 197: 109905
doi: 10.1016/j.microc.2024.109905
-
[3]
LU Z Y, GUO H, WEI X Q, SUN L, PAN Z L, LIU B Q, XU Y S, TIAN J X, YANG J Y, WANG W. A novel electrochemical sensing platform based on covalent organic frameworks/WC/NH2-MWCNT for highly selective determination of acetaminophen and 4-aminophenol[J]. Microchem. J., 2023, 193: 109075
doi: 10.1016/j.microc.2023.109075
-
[4]
RAHMAN M M. Selective and sensitive 4-aminophenol chemical sensor development based on low-dimensional Ge-doped ZnO nanocomposites by electrochemical method[J]. Microchem. J., 2020, 157: 104945
doi: 10.1016/j.microc.2020.104945
-
[5]
WANG H J, ZHANG S Y, LI S F, QU J Y. Electrochemical sensor based on palladium-reduced graphene oxide modified with gold nanoparticles for simultaneous determination of acetaminophen and 4-aminophenol[J]. Talanta, 2018, 178: 188-194
doi: 10.1016/j.talanta.2017.09.021
-
[6]
UNITED STATES PHARMACOPEIAL CONVENTION. The United States Pharmacopoeia 27-The National Formulary 22[S]. 27th ed. Rockville: United States Pharmacopeial Convention, 2004: 2494
-
[7]
EUROPEAN PHARMACOPOEIAL CONVENTION. The European Pharmacopoeia[S]. 6th ed. Strasbourg: European Pharmacopoeial Convention, 2007: 49
-
[8]
EDITOR COMMITTEE OF NATIONAL PHARMACOPOEIA. Chinese Encyclopedia of Medicines: 2000 Edition, Vol. Ⅱ[S]. Beijing: Chemical Industry Press, 2000: 206
-
[9]
BOLTIA S A, SOUDI A T, ELZANFALY E S, ZAAZAA H E. Development and validation of chromatographic methods for simultaneous determination of paracetamol, orphenadrine citrate and caffeine in presence of p-aminophenol; quantification of p-aminophenol nephrotoxic impurity using LC-MS/MS[J]. J. Chromatogr. Sci., 2020, 58: 223-233
doi: 10.1093/chromsci/bmz094
-
[10]
SHARIATI RAD M, RAJABI H. Simple colorimetric paper assay of acetaminophen, ascorbic acid and phenylephrine in pharmaceutical samples[J]. J. Iranian Chem. Soc., 2022, 19: 3591-3596
doi: 10.1007/s13738-022-02554-3
-
[11]
KAMYABI M A. Simultaneous spectrophotometric determination of paracetamol and p-aminophenol by using mean centering of ratio kinetic profiles[J]. J. Chin. Chem. Soc., 2009, 56: 142-149
doi: 10.1002/jccs.200900020
-
[12]
BLOOMFIELD M S. A sensitive and rapid assay for 4-aminophenol in paracetamol drug and tablet formulation by flow injection analysis with spectrophotometric detection[J]. Talanta, 2002, 58: 1301-1310
doi: 10.1016/S0039-9140(02)00421-6
-
[13]
LU X, WEI L, XU D, WU G, YANG H, HU J Q. Surface molecular imprinting on silica-coated CdTe quantum dots for selective and sensitive fluorescence detection of p-aminophenol in water[J]. J. Fluoresc., 2017, 27: 181-189
doi: 10.1007/s10895-016-1944-7
-
[14]
LU W, WANG H, WU X Y, LIU X Q, LI D Y, CHEN J H, ZHANG L X, SI X S. Multi-template imprinted polymers for simultaneous selective solid-phase extraction of six phenolic compounds in water samples followed by determination using capillary electrophoresis[J]. J. Chromatogr. A, 2017, 1483: 30-39
doi: 10.1016/j.chroma.2016.12.069
-
[15]
ARMAN A, SAĞLAM S, ÜZER A, APAK R. Electrochemical determination of nitroaromatic explosives using glassy carbon/multi walled carbon nanotube/polyethyleneimine electrode coated with gold nanoparticles[J]. Talanta, 2022, 238: 122990
doi: 10.1016/j.talanta.2021.122990
-
[16]
FANG D, TANG S W, WU Z Y, CHEN C L, WAN M M, MAO C, ZHOU M. Electrochemical sensor based on micromotor technology for detection of Ox-LDL in whole blood[J]. Biosens. Bioelectron., 2022, 217: 114682
doi: 10.1016/j.bios.2022.114682
-
[17]
LEE S, GWON K, KIM H, PARK B J, SHIN J H. High-performance amperometric carbon monoxide sensor based on a xerogel-modified PtCr/C microelectrode[J]. Sens. Actuator B‒Chem., 2022, 369: 132275
-
[18]
PIERPAOLI M, JAKÓBCZYK P, DEC B, GIOSUÈ C, CZERWIŃSKA N, LEWKOWICZ A, RUELLO M L, BOGDANOWICZ R. A novel hierarchically‑porous diamondized polyacrylonitrile sponge‑like electrodes for acetaminophen electrochemical detection[J]. Electrochim. Acta, 2022, 430: 141083
doi: 10.1016/j.electacta.2022.141083
-
[19]
ZHAI Y, YE X Y, ZHANG Y B, ZHANG K Z, ZHAN E, ZHANG X D, YANG Y Q. Excellent sensing platforms for identification of gaseous pollutants based on metal-organic frameworks: A review[J]. Chem. Eng. J., 2024, 484: 149286
doi: 10.1016/j.cej.2024.149286
-
[20]
HAO X, SONG W H, WANG Y H, QIN J L, JIANG Z Q. Recent advancements in electrochemical sensors based on MOFs and their derivatives[J]. Small, 2025, 21(4): 2408624
doi: 10.1002/smll.202408624
-
[21]
ZHANG W Q, LI X J, DING X M, HUA K, SUN A L, HU X X, NIE Z W, ZHANG Y S, WANG J C, LI R L, LIU S Q. Progress and opportunities for metal-organic framework composites in electrochemical sensors[J]. RSC Adv., 2023, 13(16): 10800-10817
doi: 10.1039/D3RA00966A
-
[22]
CHANG Y N, SHEN C H, HUANG C W, TSAI M D, KUNG C W. Defective metal-organic framework nanocrystals as signal amplifiers for electrochemical dopamine sensing[J]. ACS Appl. Nano Mater., 2023, 6: 3675-3684
doi: 10.1021/acsanm.2c05402
-
[23]
TANG J, LIU Y, HU J Q, ZHENG S B, WANG X C, ZHOU H P, JIN B K. Co-based metal-organic framework nanopinnas composite doped with Ag nanoparticles: A sensitive electrochemical sensing platform for simultaneous determination of dopamine and acetaminophen[J]. Microchem. J., 2020, 155: 104759
doi: 10.1016/j.microc.2020.104759
-
[24]
CHEN S S, HUANG R M, ZOU J, LIAO D, YU J G, JIANG X Y. A sensitive sensor based on MOFs derived nanoporous carbons for electrochemical detection of 4-aminophenol[J]. Ecotox. Environ. Safe., 2020, 191: 110194
doi: 10.1016/j.ecoenv.2020.110194
-
[25]
MA H M, GU H F, SHUI X J, YANG Q, ZHANG Y Y, HU X X, ZENG T, YANG J, LI C L, YANG N J. Confining Fe nanoparticles within N-doped carbon nanotubes for boosting electrochemical sensing of 4-aminophenol[J]. Microchem. J., 2025, 218: 115230
doi: 10.1016/j.microc.2025.115230
-
[26]
AMANI V, NOROUZI F, AKRAMI Z. A review of UiO-based MOF detection and removal strategies for antibiotics in water[J]. New J. Chem., 2024, 48(43): 18600-18617
doi: 10.1039/D4NJ03409K
-
[27]
TRAN L T, DANG H T M, TRAN H V, HOANG G T L, HUYNH C D. MIL-88B(Fe)-NH2: An amine-functionalized metal-organic framework for application in a sensitive electrochemical sensor for Cd2+, Pb2+, and Cu2+ ion detection[J]. RSC Adv., 2023, 13(32): 21861-21872
doi: 10.1039/D3RA02828C
-
[28]
JI L D, LI F, LI C L, HU P. Solvent-exfoliated Cu-TCPP nanosheets: Electrochemistry and sensing application in simultaneous determination of 4-aminophenol and acetaminophen[J]. Microchem. J., 2022, 181: 107688
doi: 10.1016/j.microc.2022.107688
-
[29]
GUO H, FAN T, YAO W Q, YANG W H, WU N, LIU H, WANG M Y, YANG W. Simultaneous determination of 4-aminophenol and acetaminophen based on high electrochemical performance of ZIF-67/MWCNT-COOH/Nafion composite[J]. Microchem. J., 2020, 158: 105262
doi: 10.1016/j.microc.2020.105262
-
[30]
LIU L L, MA T T, XU L, WANG B Q, ZHANG L J, FU Y L, YANG H Y, JI W J. Dense pyridine nitrogen as surface decoration of interwoven Cu-MOFs for chloramphenicol-specific electrochemical sensor[J]. Microchem. J., 2024, 200: 110318
doi: 10.1016/j.microc.2024.110318
-
[31]
FANG X, CHEN X Y, LIU Y, LI Q J, ZENG Z R, MAIYALAGAN T, MAO S. Nanocomposites of Zr-based metal-organic frameworks and reduced graphene oxide for electrochemically sensing ciprofloxacin in water[J]. ACS Appl. Nano Mater., 2019, 2(4): 2367-2376
doi: 10.1021/acsanm.9b00243
-
[32]
ZHANG J W, LI H, LI J Q, CHEN Y, QU P, ZHAI Q G. Enhancement of the fluorescence properties via introducing the tetraphenylethylene chromophores into a novel Mn-organic framework with a rare [Mn4(μ3-OH)2] cluster[J]. Dalton Trans., 2021, 50: 17482-17486
doi: 10.1039/D1DT03349B
-
[33]
XU Y C, CHEN Y, QIU H J, ZENG X S, XU H L, LI J, ZENG Y F, XIAO D R. Metal nuclearity affects network connectivity: A series of highly connected metal-organic frameworks based on polynuclear metal clusters as secondary building units[J]. CrystEngComm, 2016, 18(42): 8182-8193
doi: 10.1039/C6CE01287F
-
[34]
CHANDRA A, MEBS S, KUNDU S, KUHLMANN U, HILDEBRANDT P, DAU H, RAY K. Catalytic dioxygen reduction mediated by a tetranuclear cobalt complex supported on a stannoxane core[J]. Dalton Trans., 2020, 49: 6065-6073
doi: 10.1039/D0DT00475H
-
[35]
NIU X H, ZHANG J Y, YUAN M, LIU Y Q, WANG Y W, LI H X, WANG K J. Polyoxometalate-based chiral MOF featuring superior enantioselective electrocatalytic oxidation performance[J]. ACS Appl. Mater. Interfaces, 2025, 17: 47512-47520
doi: 10.1021/acsami.5c10012
-
[36]
SHI J, YAN L, WANG B, WANG G J, WANG B Q, YANG H Y, FU Y L, JI W J. Dual turn-on/off fluorescence sensing in heterobimetallic MOFs for ultrasensitive detection of multiple antibiotics[J]. Inorg. Chem., 2025, 64(34): 17266-17278
doi: 10.1021/acs.inorgchem.5c02403
-
[37]
ZHANG J, MA J L, ZHANG S B, WANG W C, CHEN Z D. A highly sensitive nonenzymatic glucose sensor based on CuO nanoparticles decorated carbon sphere[J]. Sens. Actuator B‒Chem., 2015, 211: 385-391
doi: 10.1016/j.snb.2015.01.100
-
[38]
CUI H F, YE J, ZHANG S, LI W D, LONG J H, SHEU F S. Selective and sensitive electrochemical detection of glucose in neutral solution using platinum-lead alloy nanoparticle/carbon nanotube nanocomposites[J]. Anal. Chim. Acta, 2007, 594(2): 175-183
doi: 10.1016/j.aca.2007.05.047
-
[39]
FERNANDEZ L, BORRÁS C, CARRERO H. Electrochemical behavior of phenol in alkaline media at hydrotalcite-like clay/anionic surfactants/glassy carbon modified electrode[J]. Electrochim. Acta, 2006, 52(3): 872-884
doi: 10.1016/j.electacta.2006.06.021
-
[40]
HOLZE R. Book review: Electrochemical methods. Fundamentals and applications (2nd edition). By Allen J. Bard and Larry R. Faulkner[J]. Angew. Chem. ‒Int. Edit., 2002, 41(4): 655-657
-
[41]
JAHANI S, SEDIGHI A, TOOLABI A, FOROUGHI M M. Development and characterization of La2O3 nanoparticles@snowflake-like Cu2S nanostructure composite modified electrode and application for simultaneous detection of catechol, hydroquinone and resorcinol as an electrochemical sensor[J]. Electrochim. Acta, 2022, 416: 140261
-
[42]
KARIMI-MALEH H, YOLA M L, ATAR N, OROOJI Y, KARIMI F, SENTHIL KUMAR P P, ROUHI J, BAGHAYERI M. A novel detection method for organophosphorus insecticide fenamiphos: Molecularly imprinted electrochemical sensor based on core-shell Co3O4@ MOF-74 nanocomposite[J]. J. Colloid Interface Sci., 2021, 592: 174-185
doi: 10.1016/j.jcis.2021.02.066
-
[43]
GUO L N, HAO L, ZHANG Y F, YANG X M, WANG Q Q, WANG Z, WANG C. Metal-organic framework precursors derived Ni-doping porous carbon spheres for sensitive electrochemical detection of acetaminophen[J]. Talanta, 2021, 228: 122228
doi: 10.1016/j.talanta.2021.122228
-
[44]
SUN X J, ZHANG L, ZHANG X H, LIU X X, JIAN J, KONG D C, ZENG D C, YUAN H M, FENG S H. Electrochemical dopamine sensor based on superionic conducting potassium ferrite[J]. Biosens. Bioelectron., 2020, 153: 112045
doi: 10.1016/j.bios.2020.112045
-
[45]
WANG J J, ZHANG H, ZHAO J H, ZHANG R Y, ZHAO N, REN H L, LI Y C. Simultaneous determination of paracetamol and p-aminophenol using glassy carbon electrode modified with nitrogen- and sulfur-co-doped carbon dots[J]. Microchim. Acta, 2019, 186(11): 733
-
[46]
XU L, MA T T, BAI Y Y, SU J, FU Y L, YANG H Y, JI W J. Functionalized cadmium-metal organic framework materials with Azo nonds for highly sensitive electrochemical detection of 4-aminophenol[J]. Chin. J. Anal. Chem., 2024, 52(4): 587-596
-
[47]
WANG H Y, XIE A J, LI S J, WANG J J, CHEN K X, SU Z L, SONG N N. Three-dimensional g-C3N4/MWNTs/GO hybrid electrode as electrochemical sensor for simultaneous determination of ascorbic acid, dopamine and uric acid[J]. Anal. Chim. Acta, 2022, 1211: 339907
-
[48]
FDEZ-SANROMÁN A, BEN MESSAOUD N, PAZOS M, ROSALES E, BARBOSA QUEIRÓS R. Development of eco-friendly and cost-effective electrochemical sensor for the simultaneous detection of 4-aminophenol and paracetamol in water[J]. Sens. Biosens. Res., 2025, 48: 100782
-
[49]
TAYYAB M, RAHIM A, TARIQ M, KHAN Z U H, SABAHAT S, IQBAL J, FOUAD D, QADEER A, ATAYA F S, SHERIN L. Revolutionizing electrochemical sensing: Ultra-sensitive non-enzymatic detection of 4-aminophenol with a novel Cu-PANI nanocomposite[J]. J. Water Process Eng., 2025, 75: 107927
-
[50]
CHEN J, XUE W L, SHI Y Q, LIU W J, MA R F. MXene/PANI/SnO2 electrochemical sensor for the determination of 4-aminophenol[J]. Microchim. Acta, 2025, 192: 649
-
[51]
RAHMAN M H, RASHED M A, NAYEM N I, RAHAMAN M A, AHMED J, FAISAL M, JALALAH M, HARRAZ F A. Nanogold- decorated reduced graphene oxide/chitosan composite for electrochemical sensing of N-acetyl-4-aminophenol[J]. Mater. Chem. Phys., 2024, 314: 128915
-
[52]
HOU W L, KANG X Y, LIN J J, XIE M Y, LI Y C. The preparation of AuNPs/B-dNACNs and their application in p-aminophenol electrochemical sensing[J]. New J. Chem., 2023, 47: 20838-20845