Integrating energetic materials with microelectromechanical systems (MEMS) to achieve miniaturized integrated smart energetic microchips has broad application prospects in miniaturized aerospace systems and civil explosive systems. In this work, MEMS compatible [Cu(BODN)·5HO] arrays and [Cu(BODN)·5HO]@nano-Al composite energetic films were successfully fabricated on copper substrates by the reaction method and drop-coating method. Single crystal X-ray diffraction, powder X-ray diffraction, scanning electron microscopy, infrared spectroscopy, differential thermal analyses, and pulsed laser ignition were employed to characterize the prepared samples. The results show that [Cu(BODN)·5HO] arrays formed by the coordination reaction between the Cu(OH) template and the BODN ligand exhibit a porous supramolecular structure with excellent thermal and energy properties. Their morphology and composition on a copper substrate can be effectively regulated by adjusting the reaction time and solution concentration. In addition, adjustable energetic properties of [Cu(BODN)·5HO]@nano-Al composite films can be achieved after the encapsulation of nano-Al. Their heat release, flame height and ignition duration can reach as much as 1987.5 J g, 13.2 mm, and 5900 μs, respectively, indicating that [Cu(BODN)·5HO]@nano-Al can be used as an excellent pyrotechnic agent in MEMS ignition chips. Overall, this work provides a reference for the integration and application of energetic materials in MEMS systems.
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http://dx.doi.org/10.1039/d3lc00282a | DOI Listing |
ACS Omega
November 2024
Key Laboratory of Gas and Fire Control for Coal Mines (China University of Mining and Technology), Ministry of Education, Xuzhou 221116, China.
In this study, melamine-urea-formaldehyde/nano-AlO (MUF/nano-AlO) composite gel foams were produced by foaming with CO generated by CaCO and phosphoric acid. Nano-AlO was introduced to the MUF matrix based on the optimum formulation obtained by the response surface methodology based on Box-Behnken design, and the effects of nano-AlO on the cell structure, apparent density, compressive strength, pulverization ratio, thermal stability, and thermal conductivity were investigated. The results revealed that the introduction of nano-AlO could improve the foaming and mechanical properties of MUF with smaller cell sizes, a narrower cell size distribution, decreased apparent density, higher compressive strength, and a decreased pulverization ratio.
View Article and Find Full Text PDFMaterials (Basel)
September 2024
State Key Laboratory of Materials-Oriented Chemical Engineering, College of Materials Science and Engineering, Nanjing Tech University, Nanjing 210009, China.
High-temperature adhesives find extensive application in diverse domains, encompassing repairs, production processes, and material joining. However, achieving their curing at ambient temperatures remains a formidable challenge due to the inherent requirement of elevated temperatures, typically exceeding 500 °C, for the curing reaction. To overcome this limitation, in this study, we developed a distinctive inorganic phosphate-based composite adhesive by incorporating dual-functional calcium monoaluminate (CA) into a traditional adhesive blend comprising Al(HPO) and MgO.
View Article and Find Full Text PDFSci Rep
August 2024
Physical Chemistry Department, National Research Centre (NRC), El-Buhouth St., Dokki, 12622, Cairo, Egypt.
The study describes the successful development of a TiO ceramic substrate with a protective nano-AlO coating using two different coating techniques: microwave combustion and polymeric methods. The coated ceramics demonstrate enhanced corrosion resistance compared to the uncoated substrate. The optimal TiO substrate was prepared by firing it at 1000 °C.
View Article and Find Full Text PDFCarbohydr Polym
May 2024
College of Chemistry and Chemical Engineering, Donghua University, Shanghai 201620, PR China. Electronic address:
To design flexible functional materials with high efficiency, light weight, less metal consumption, stable structure for the thermal infrared stealth materials is a great challenge. We hypothesized that the use of crystal materials with different sizes to design composites with a chiral layered helical structure, the layered structures can repeatedly reflect infrared ray. Here, we reported the novel multi-scale layered helical chiral structure composite by self-assembly using the co-dispersion of cellulose nanocrystals (CNC) and micro-nano Al sheets.
View Article and Find Full Text PDFLab Chip
October 2023
School of Environmental and Safety Engineering, North University of China, Taiyuan, Shanxi, China.
Integrating energetic materials with microelectromechanical systems (MEMS) to achieve miniaturized integrated smart energetic microchips has broad application prospects in miniaturized aerospace systems and civil explosive systems. In this work, MEMS compatible [Cu(BODN)·5HO] arrays and [Cu(BODN)·5HO]@nano-Al composite energetic films were successfully fabricated on copper substrates by the reaction method and drop-coating method. Single crystal X-ray diffraction, powder X-ray diffraction, scanning electron microscopy, infrared spectroscopy, differential thermal analyses, and pulsed laser ignition were employed to characterize the prepared samples.
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