Phan-Quang Gia Chuong, Lee Hiang Kwee, Teng Hao Wen, Koh Charlynn Sher Lin, Yim Barnabas Qinwei, Tan Eddie Khay Ming, Tok Wee Lee, Phang In Yee, Ling Xing Yi
Division of Chemistry and Biological Chemistry, School of Physical and Mathematical Sciences, Nanyang Technological University, 21 Nanyang Link, Singapore, 637371, Singapore.
Institute of Materials Research and Engineering, Agency for Science, Technology and Research (A*STAR), 2 Fusionopolis Way, Innovis, #08-03, Singapore, 138634, Singapore.
Angew Chem Int Ed Engl. 2018 May 14;57(20):5792-5796. doi: 10.1002/anie.201802214. Epub 2018 Apr 19.
Molecular-level airborne sensing is critical for early prevention of disasters, diseases, and terrorism. Currently, most 2D surface-enhanced Raman spectroscopy (SERS) substrates used for air sensing have only one functional surface and exhibit poor SERS-active depth. "Aerosolized plasmonic colloidosomes" (APCs) are introduced as airborne plasmonic hotspots for direct in-air SERS measurements. APCs function as a macroscale 3D and omnidirectional plasmonic cloud that receives laser irradiation and emits signals in all directions. Importantly, it brings about an effective plasmonic hotspot in a length scale of approximately 2.3 cm, which affords 100-fold higher tolerance to laser misalignment along the z-axis compared with 2D SERS substrates. APCs exhibit an extraordinary omnidirectional property and demonstrate consistent SERS performance that is independent of the laser and analyte introductory pathway. Furthermore, the first in-air SERS detection is demonstrated in stand-off conditions at a distance of 200 cm, highlighting the applicability of 3D omnidirectional plasmonic clouds for remote airborne sensing in threatening or inaccessible areas.
分子水平的空气传播传感对于灾害、疾病和恐怖主义的早期预防至关重要。目前,大多数用于空气传感的二维表面增强拉曼光谱(SERS)基底只有一个功能表面,且SERS活性深度较差。“雾化等离子体胶体球”(APC)被引入作为用于直接空中SERS测量的空气传播等离子体热点。APC起到宏观三维全向等离子体云的作用,接收激光照射并向各个方向发射信号。重要的是,它在约2.3 cm的长度尺度上产生有效的等离子体热点,与二维SERS基底相比,其对沿z轴的激光失准具有高100倍的耐受性。APC表现出非凡的全向特性,并展示出与激光和分析物引入途径无关的一致SERS性能。此外,首次在200 cm距离的对峙条件下进行了空中SERS检测,突出了三维全向等离子体云在威胁区域或难以进入区域进行远程空气传播传感的适用性。