Self-standing 3D-printed gas sensor using molybdenum boride MBene based PCN-224 modified composite for ppb-level detection of formaldehyde at ambient temperature

甲醛 复合数 材料科学 色谱法 复合材料 化学 冶金 有机化学
作者
Banalata Maji,Om Priya Nanda,Nishat Kumar Das,Sushmee Badhulika
出处
期刊:Chemical Engineering Journal [Elsevier BV]
卷期号:522: 167092-167092 被引量:7
标识
DOI:10.1016/j.cej.2025.167092
摘要

Reliable formaldehyde sensors are essential for public safety and environmental monitoring. However, most of them are fabricated via conventional coating techniques relying on costly materials and non-scalable fabrication methods , limiting their widespread applications. Addressing these issues, for the first time, we report a low-cost, scalable 3D-printed self-standing sensor based on zirconium (IV)-porphyrin MOF/molybdenum boride MBene (PCN-224/MoB-MBene) composite for the trace-level detection of formaldehyde at room temperature. PCN-224 is synthesized via solvothermal method using porphyrin linkers, while MoB-MBene is synthesized through NaOH etching followed by annealing process. Then, an ink is formulated by mixing optimized concentrations of PCN-224/MoB-MBene composite with polyacrylic acid and bis-acrylamide solution. Subsequently, 3D-printing approach is used to fabricate a uniform, self-standing cross-shaped film using ink with dimensions of 1 cm × 1 cm (length × width) as a formaldehyde sensor. A comprehensive morphological analysis shows cubic-shaped PCN-224 particles are well dispersed on the MoB-MBene sheets and securely embedded within the 3D-printed polymer matrix. This 3D-printed sensor significantly enhances the adsorption capacity of active sites on the film surface, facilitated by abundant oxygen vacancies (O c % = 46.4 %). The sensor exhibits a wide dynamic range from 250 ppb to 30 ppm with response/recovery time of 68 s/31 s, and a low detection limit of 219 ppb. The selectivity of this 3D-printed sensor is evaluated towards 1.32 ppm of formaldehyde along with nine different VOCs like aniline, methanol, ethanol, benzene, acetone, toluene, dimethylamine, m-cresol, and ethanolamine. This sensor shows 3–5 times better sensing response towards formaldehyde as compared to other tested VOCs. The sensor also exhibits high performance repeatability for 8 cycles and long-term stability performance for 26 days. • First report on MBene-based composite for formaldehyde sensing, enabling low-cost, scalable sensor fabrication. • PAA/BIS printable ink used as a flexible polymer matrix, allowing direct printing of gas sensor. • Achieve a high response (221 %) and wide detection range (250 ppb-2.5 ppm) with a LOD of 219 ppb. • Exhibits 3-5× higher selectivity toward formaldehyde over nine other VOCs, attributed to abundant oxygen vacancy (46.4 %). • Excellent mechanical resilience even after repeated twisting.
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