Nuo Li, Hongliang Zhu, Guangfen Wei, Miran Lakota, Anton Pleteršek, Xiaoshuan Zhang
{"title":"用于植物双超灵敏抗干扰乙烯传感器的无氟二维MBene","authors":"Nuo Li, Hongliang Zhu, Guangfen Wei, Miran Lakota, Anton Pleteršek, Xiaoshuan Zhang","doi":"10.1016/j.cej.2025.169481","DOIUrl":null,"url":null,"abstract":"Pursuing plant-wearable ethylene sensors combining extreme sensitivity and environmental robustness faces fundamental material challenges in interfacial design and sustainable fabrication. We present a fluorine-free hydrothermal etching strategy that synthesizes Mo<sub>1.33</sub>B<sub>2</sub>T<sub>x</sub> MBenes through HCl concentration-controlled crystallization (10–12 mol/L). The 11 mol/L-optimized MBene (B<sub>11</sub>) features a compact lamellar architecture with 0.38 nm interlayer spacing and oxygen-rich terminals (XPS: 68.3 at.%), enabling quantum-confined charge transfer (DFT: 0.98 e<sup>−</sup>) and record ethylene adsorption energy (−3.803 eV) via p-π* orbital hybridization. This atomic-level interface engineering yields a wearable biosensor with dual breakthrough performance: 0.01 ppm detection limit (lowest reported) with 30s response and < 8.92 × 10<sup>3</sup> % resistance drift over 1000 bending cycles. A biomimetic encapsulation system combining electromagnetic shielding (42 dB SNR enhancement) and superhydrophobic PDMS suppresses 97.3 % environmental interference while maintaining epidermal conformability (Young's modulus: 2.4 MPa). Field deployments across postharvest species (kiwifruit ΔR/R<sub>0</sub> = 1.21; banana = 0.89; tomato = 1.57) demonstrate multispecies tracking accuracy (R<sup>2</sup> = 0.986 vs. GC–MS) with 92 % humidity immunity. Our work establishes three transformative advances: (1) the first eco-friendly MBene synthesis protocol, (2) a materials-by-design paradigm linking termination chemistry to sensing specificity, and (3) a modular sensor architecture bridging lab-scale innovation to agricultural IoT scalability.","PeriodicalId":270,"journal":{"name":"Chemical Engineering Journal","volume":"1 1","pages":""},"PeriodicalIF":13.2000,"publicationDate":"2025-10-13","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Fluorine-free 2D MBene for dual ultra-sensitive and anti-interference ethylene sensor in plants\",\"authors\":\"Nuo Li, Hongliang Zhu, Guangfen Wei, Miran Lakota, Anton Pleteršek, Xiaoshuan Zhang\",\"doi\":\"10.1016/j.cej.2025.169481\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"Pursuing plant-wearable ethylene sensors combining extreme sensitivity and environmental robustness faces fundamental material challenges in interfacial design and sustainable fabrication. We present a fluorine-free hydrothermal etching strategy that synthesizes Mo<sub>1.33</sub>B<sub>2</sub>T<sub>x</sub> MBenes through HCl concentration-controlled crystallization (10–12 mol/L). The 11 mol/L-optimized MBene (B<sub>11</sub>) features a compact lamellar architecture with 0.38 nm interlayer spacing and oxygen-rich terminals (XPS: 68.3 at.%), enabling quantum-confined charge transfer (DFT: 0.98 e<sup>−</sup>) and record ethylene adsorption energy (−3.803 eV) via p-π* orbital hybridization. This atomic-level interface engineering yields a wearable biosensor with dual breakthrough performance: 0.01 ppm detection limit (lowest reported) with 30s response and < 8.92 × 10<sup>3</sup> % resistance drift over 1000 bending cycles. A biomimetic encapsulation system combining electromagnetic shielding (42 dB SNR enhancement) and superhydrophobic PDMS suppresses 97.3 % environmental interference while maintaining epidermal conformability (Young's modulus: 2.4 MPa). Field deployments across postharvest species (kiwifruit ΔR/R<sub>0</sub> = 1.21; banana = 0.89; tomato = 1.57) demonstrate multispecies tracking accuracy (R<sup>2</sup> = 0.986 vs. GC–MS) with 92 % humidity immunity. 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Fluorine-free 2D MBene for dual ultra-sensitive and anti-interference ethylene sensor in plants
Pursuing plant-wearable ethylene sensors combining extreme sensitivity and environmental robustness faces fundamental material challenges in interfacial design and sustainable fabrication. We present a fluorine-free hydrothermal etching strategy that synthesizes Mo1.33B2Tx MBenes through HCl concentration-controlled crystallization (10–12 mol/L). The 11 mol/L-optimized MBene (B11) features a compact lamellar architecture with 0.38 nm interlayer spacing and oxygen-rich terminals (XPS: 68.3 at.%), enabling quantum-confined charge transfer (DFT: 0.98 e−) and record ethylene adsorption energy (−3.803 eV) via p-π* orbital hybridization. This atomic-level interface engineering yields a wearable biosensor with dual breakthrough performance: 0.01 ppm detection limit (lowest reported) with 30s response and < 8.92 × 103 % resistance drift over 1000 bending cycles. A biomimetic encapsulation system combining electromagnetic shielding (42 dB SNR enhancement) and superhydrophobic PDMS suppresses 97.3 % environmental interference while maintaining epidermal conformability (Young's modulus: 2.4 MPa). Field deployments across postharvest species (kiwifruit ΔR/R0 = 1.21; banana = 0.89; tomato = 1.57) demonstrate multispecies tracking accuracy (R2 = 0.986 vs. GC–MS) with 92 % humidity immunity. Our work establishes three transformative advances: (1) the first eco-friendly MBene synthesis protocol, (2) a materials-by-design paradigm linking termination chemistry to sensing specificity, and (3) a modular sensor architecture bridging lab-scale innovation to agricultural IoT scalability.
期刊介绍:
The Chemical Engineering Journal is an international research journal that invites contributions of original and novel fundamental research. It aims to provide an international platform for presenting original fundamental research, interpretative reviews, and discussions on new developments in chemical engineering. The journal welcomes papers that describe novel theory and its practical application, as well as those that demonstrate the transfer of techniques from other disciplines. It also welcomes reports on carefully conducted experimental work that is soundly interpreted. The main focus of the journal is on original and rigorous research results that have broad significance. The Catalysis section within the Chemical Engineering Journal focuses specifically on Experimental and Theoretical studies in the fields of heterogeneous catalysis, molecular catalysis, and biocatalysis. These studies have industrial impact on various sectors such as chemicals, energy, materials, foods, healthcare, and environmental protection.