Nanoparticle Tracers in Reservoir-On-A-chip by Surface-Enhanced Raman Scattering - Fluorescence SERS-SEF Imaging Technology

Sehoon Chang, S. Eichmann, W. Wang
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Abstract

Nanoparticles or nanocomposite fluids are injected into oil reservoirs for reservoir tracing or to improve injectivity or recovery of oil. Effective application of nanoparticles in fluid flooding still needs to be investigated. Dual-mode surface-enhanced Raman scattering (SERS) - surface-enhanced fluorescence (SEF) composite nanoparticles have been developed as nanoparticle reservoir tracers. This presentation discusses their transport and detectability in porous media, providing valuable information for understanding the role of nanoparticles in EOR process. The dual-mode surface-enhanced Raman scattering (SERS) - surface-enhanced fluorescence (SEF) composite nanoparticles are synthesized composed of Ag or Au metal cores, specific dye molecules, and a SiO2 shell materials. To optimize maximum signal enhancement of both phenomena such as SERS and SEF, the distance between core metal nanoparticles and dye molecules are precisely controlled. The synthesized composite nanoparticles barcoded with dye molecules are detectable by both fluorescence and Raman spectroscopies due to the SERS-SEF phenomena. Both fluorescence and Raman microscopic images of dye embedded surfaceenhanced Raman scattering (SERS) surface-enhanced fluorescence (SEF) composite nanoparticles in water phase successfully were collected within microfluidic reservoir-on-a-chip. The reservoir-on-a-chip utilized in this study fabricated based on reservoir rock geometry and coated with calcium carbonate. The synthesized SERS-SEF composite nanoparticles in water solution have been flooded into the microfluidic reservoir-on-a-chip and imaged for probing interfacial behavior of fluids such as liquid-liquid interfaces and studying the behavior of nanoparticles at liquid-rock interfaces. The precise synthesis method to produce the composite nanoparticles has been developed for the embedded dye molecules to generate noticeably enhanced detectability due to the strong SERS phenomenon. In conclusion, SERS-SEF nanoparticles barcoded with the fingerprinted Raman and fluorescence signals can provide a possible pathway toward SERS-SEF nanoprobe as various barcoded tracers to understand fluid behavior in porous media. Composite nanoparticle synthesis and its detection in flow technologies have been developed for visualization of the fluid flow behavior in porous media representing reservoir rock geometry. The results of the high-resolution nanoparticle fluid imaging data in reservoir-on-a-chip can be applied to understand mechanism of nanoparticle fluid assisted chemical enhanced oil recovery.
基于表面增强拉曼散射-荧光SERS-SEF成像技术的芯片储层纳米颗粒示踪剂研究
将纳米颗粒或纳米复合流体注入到油藏中,用于油藏示踪或提高注入能力或采收率。纳米颗粒在流体驱油中的有效应用仍需进一步研究。双模表面增强拉曼散射(SERS) -表面增强荧光(SEF)复合纳米颗粒作为纳米颗粒储层示踪剂已被开发出来。本文讨论了纳米颗粒在多孔介质中的运移和可探测性,为理解纳米颗粒在提高采收率过程中的作用提供了有价值的信息。摘要以Ag或Au为金属芯、特定染料分子和SiO2为壳层材料,合成了双模表面增强拉曼散射(SERS) -表面增强荧光(SEF)复合纳米粒子。为了优化SERS和SEF这两种现象的最大信号增强,核心金属纳米颗粒和染料分子之间的距离被精确控制。由于SERS-SEF现象,合成的带有染料分子条形码的复合纳米颗粒可以通过荧光和拉曼光谱检测到。在微流控芯片储层中成功地收集了染料包埋表面增强拉曼散射(SERS)表面增强荧光(SEF)复合纳米颗粒在水相中的荧光和拉曼显微图像。本研究中使用的储层芯片是根据储层岩石的几何形状制作的,并涂有碳酸钙。将在水溶液中合成的SERS-SEF复合纳米颗粒注入微流体芯片储层中,成像探测液-液界面等流体的界面行为,研究纳米颗粒在液-岩界面的行为。由于嵌入的染料分子具有较强的SERS现象,因此开发了一种精确的合成方法来制备复合纳米颗粒,从而显著提高了可检测性。综上所述,利用指纹拉曼和荧光信号对SERS-SEF纳米探针进行条形码标记,可以为SERS-SEF纳米探针作为各种条形码示踪剂了解多孔介质中的流体行为提供可能的途径。复合纳米颗粒的合成及其在流动中的检测技术已经被开发出来,用于表征储层岩石几何形状的多孔介质中流体流动行为的可视化。芯片上储层的高分辨率纳米流体成像结果可用于理解纳米流体辅助化学提高采收率的机理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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