Department of Chemistry and ‡Centre for Nanotechnology, Indian Institute of Technology Guwahati , Guwahati 781039, Assam, India.
ACS Appl Mater Interfaces. 2017 Oct 25;9(42):37501-37508. doi: 10.1021/acsami.7b13390. Epub 2017 Oct 16.
The development of highly efficient latent fingerprint (LFP) technology remains extremely vital for forensic and criminal investigations. In this contribution, a straightforward, rapid, and cost-effective method has been established for the quick development of well-preserved latent fingerprint on multiple substrates, including plastic, glass, aluminum foil, metallic surfaces, and so forth, without any additional treatment, based on aggregation-induced enhanced emission-active conjugated polyelectrolyte (CPE) 3,3'-((2-(4-(1,2-diphenyl-2-(p-tolyl)vinyl)phenyl)-7-(7-methylbenzo[c][1,2,5]thiadiazol-4-yl)-9H-fluorene-9,9-diyl)bis(hexane-6,1-diyl))bis(1-methyl-1H-imidazol-3-ium) bromide, revealing clearly the third-level details (ridges, bifurcations, and pores) with high selectivity, high contrast, and no background interference even by blood stains, confirming the ability of the proposed technique for LFP detection with high resolution. The LFP development process was accomplished simply by immersing fingerprint-loaded substrate into the CPE solution for ∼1 min, followed by shaking off the residual polymer solution and then air drying. The CPE was readily transferred to the LFPs because of the strong electrostatic and hydrophobic interaction between the CPE molecules and the fingerprint components revealing distinct fluorescent images on various smooth nonporous surfaces.
发展高效的潜伏指纹(LFP)技术对于法医和犯罪调查仍然至关重要。在本研究中,我们建立了一种简单、快速且具有成本效益的方法,能够在无需任何额外处理的情况下,基于聚集诱导增强发射活性共轭聚合物电解质(CPE)3,3'-((2-(4-(1,2-二苯基-2-(对甲苯基)乙烯基)苯基)-7-(7-甲基苯并[c][1,2,5]噻二唑-4-基)-9H-芴-9,9-二基)双(己烷-6,1-二基))双(1-甲基-1H-咪唑-3-鎓)溴化物,快速开发多种基底上保存完好的潜伏指纹,包括塑料、玻璃、铝箔、金属表面等,清晰显示第三级细节(脊、分叉和孔),具有高选择性、高对比度,并且即使有血迹也没有背景干扰,证实了该技术具有高分辨率的 LFP 检测能力。潜伏指纹的开发过程非常简单,只需将负载有指纹的基底浸入 CPE 溶液中约 1 分钟,然后摇晃除去残留的聚合物溶液,再自然风干即可。由于 CPE 分子与指纹成分之间存在强烈的静电和疏水相互作用,CPE 很容易转移到 LFPs 上,从而在各种光滑无孔表面上呈现出清晰的荧光图像。