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首页> 外文期刊>ACS applied materials & interfaces >Biomimetic Turbinate-like Artificial Nose for Hydrogen Detection Based on 3D Porous Laser-Induced Graphene
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Biomimetic Turbinate-like Artificial Nose for Hydrogen Detection Based on 3D Porous Laser-Induced Graphene

机译:基于3D多孔激光诱导的石墨烯的氢检测氢检测的仿生鼻甲样图

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摘要

Inspired by the turbinate structure in the olfaction system of a dog, a biomimetic artificial nose based on 3D porous laser-induced graphene (LIG) decorated with palladium (Pd) nanoparticles (NPs) has been developed for room-temperature hydrogen (H-2) detection. A 3D porous biomimetic turbinate-like network of graphene was synthesized by simply irradiating an infrared laser beam onto a polyimide substrate, which could further be transferred onto another flexible substrate such as polyethylene terephthalate (PET) to broaden its application. The sensing mechanism is based on the catalytic effect of the Pd NPs on the crystal defect of the biomimetic LIG turbinate-like microstructure, which allows facile adsorption and desorption of the nonpolar H-2 molecules. The sensor demonstrated an approximately linear sensing response to H-2 concentration. Compared to chemical vapor-deposited (CVD) graphene-based gas sensors, the biomimetic turbinate-like microstructure LIG-gas sensor showed similar to 1 time higher sensing performance with much simpler and lower-cost fabrication. Furthermore, to expand the potential applications of the biomimetic sensor, we modulated the resistance of the biomimetic LIG sensor by varying laser sweeping gaps and also demonstrated a well-transferred LIG layer onto transparent substrates. Moreover, the LIG sensor showed good mechanical flexibility and robustness for potential wearable and flexible device applications.
机译:灵感来自狗的嗅觉系统中的鼻甲结构,已经开发了一种基于3D多孔激光诱导的石墨烯(LIG)的仿生人造鼻(LIG),用于室温氢气(H-2 )检测。通过简单地照射红外激光束在聚酰亚胺基板上合成3D多孔生物摩擦鼻甲样图,其可以将进一步转移到另一个柔性基材上,例如聚对苯二甲酸乙二醇酯(PET)以拓宽其应用。感测机理基于PD NP对仿生型鼻型微结构的晶体缺陷的催化作用,这允许非极性H-2分子的体内吸附和解吸。传感器对H-2浓度进行了大致线性感测响应。与化学蒸汽沉积(CVD)石墨烯基气体传感器相比,仿生型鼻甲状微观结构Lig气体传感器显示出类似于1次更高的传感性能,具有更简单和更低的制造。此外,为了扩展仿生传感器的潜在应用,我们通过改变激光扫描间隙调节仿生Lig传感器的电阻,并且还在透明基板上显示出良好转移的Lig层。此外,LIG传感器对潜在的可穿戴和柔性装置应用显示出良好的机械柔性和鲁棒性。

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