Plasmonic Particle Integration into Near-Infrared Photodetectors and Photoactivated Gas Sensors: Toward Sustainable Next-Generation Ubiquitous Sensing

被引:6
作者
Schlicke, Hendrik [1 ]
Maletz, Roman [2 ]
Dornack, Christina [2 ]
Fery, Andreas [1 ,3 ]
机构
[1] Leibniz Inst Polymer Res Dresden, Hohe Str 6, D-01069 Dresden, Germany
[2] TUD Dresden Univ Technol, Inst Waste Management & Circular Econ, Fac Environm Sci, Pratzschwitzer Str 15, D-01796 Pirna, Germany
[3] TUD Dresden Univ Technol, Phys Chem Polymer Mat, Bergstrasse 66, D-01069 Dresden, Germany
关键词
gas sensing; nanoparticles; photodetection; plasmonics; sustainability; METAL; ENERGY; BREATH;
D O I
10.1002/smll.202403502
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Current challenges in environmental science, medicine, food chemistry as well as the emerging use of artificial intelligence for solving problems in these fields require distributed, local sensing. Such ubiquitous sensing requires components with 1) high sensitivity, 2) power efficiency, 3) miniaturizability, and 4) the ability to directly interface with electronic circuitry, i.e., electronic readout of sensing signals. Over the recent years, several nanoparticle-based approaches have found their way into this field and have demonstrated high performance. However, challenges remain, such as the toxicity of many of today's narrow bandgap semiconductors for NIR detection and the high energy consumption as well as low selectivity of state-of-the-art commercialized gas sensors. With their unique light-matter interaction and ink-based fabrication schemes, plasmonic nanostructures provide potential technological solutions to these challenges, leading also to better environmental performance. In this perspective recent approaches of using plasmonic nanoparticles are discussed for the fabrication of NIR photodetectors and light-activated, energy-efficient gas sensing devices. In addition, new strategies implying computational approaches are pointed out for miniaturizable spectrometers, exploiting the wide spectral tunability of plasmonic nanocomposites, and for selective gas sensors, utilizing dynamic light activation. The benefits of colloidal approaches for device fabrication are discussed with regard to technological advantages and environmental aspects, which are barely considered so far. Device integration of plasmonic nanoparticles bears great potential for next-generation electronics. This perspective highlights recent works on new device types utilizing plasmonic nanoparticles for multispectral near-infrared photodetection and photoactivated chemical sensing. Benefits of colloidal approaches for device fabrication are discussed with regard to technological advantages and environmental aspects. image
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页数:13
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