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Transfer of highly porous nanoparticle layers to various substrates through mechanical compression

机译:转让高度多孔纳米颗粒层不同基质通过机械压缩

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摘要

A new two-step layer transfer process is introduced that is capable of fabricating mechanically stabilized highly porous nanoparticle layers on various substrates. In a first step titanium dioxide nanoparticles were synthesized with Flame-Spray-Pyrolysis and accumulated on a filter paper in the gas phase. In a second step this highly porous filter cake is subsequently transferred to a final substrate via low pressure lamination at room temperature. This leads to mechanical restructuring and stabilization of the porous layer. Pore size analysis indicates homogenization of the layers through rearrangement of the aggregates inside the layers that increases with applied pressure. Additionally, the Young's moduli of the layers were quantified through Colloidal-Probe-Technique indentation measurements with an Atomic-Force-Microscope. The highest lamination pressure of 2.5 MPa resulted in triplication of the Young's modulus. The results show that our novel two-step layer transfer process leads to mechanically stabilized layers that preserve their high porosity. Through the decoupling of the high temperature nanoparticle synthesis and the final substrate the process also enables the possibility to apply temperature sensitive substrates such as polypropylene foil.
机译:一个新的两步层转移过程介绍了能够制造的机械稳定高度多孔不同基质纳米颗粒层。二氧化钛纳米颗粒是第一步合成和Flame-Spray-Pyrolysis积累在气相中的滤纸。在第二步这种高度多孔滤饼随后被转移到最后一个衬底吗在室温下通过低压纹理。这将导致机械重组和稳定的多孔层。分析显示层的均质化通过重排的总量增加的层应用的压力。此外,年轻的模层通过Colloidal-Probe-Technique量化压痕测量的原子力显微镜。2.5 MPa的压力导致的三倍杨氏模量。小说两步层转移过程机械稳定层保护他们的高孔隙度。高温纳米颗粒合成最后一个衬底过程也使应用温度敏感的可能性基质如聚丙烯薄膜。

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