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走滑断裂分段叠置区通常包括拉分叠置区和挤压叠置区,其形成及演化与油气藏关系密切,其内部构造特征对油气运聚具有重要影响。塔里木盆地顺托果勒地区顺北1号断裂叠置区分段发育特征明显,油气勘探表明,拉分叠置区和挤压叠置区对油气运聚的控制能力有一定差异。在分析构造特征的基础上,对走滑断裂拉分叠置区和挤压叠置区开展了物理模拟实验研究,结果显示,拉分叠置区内发育有多组里德尔(R)剪切和压剪性(P)剪切,在叠置区内多组断裂组成一套平面范围较小、垂向断距较大的雁列地堑系统;挤压叠置区内仅发育一组R剪切、P剪切及单条共轭里德尔(R')剪切,并在叠置区内形成平面范围较大、垂向断距较小的地垒。因此认为,基底断裂的几何形态、运动性质是控制叠置区发育类型的关键因素。叠置区内断裂发育的数量、规模均受控于总走滑量,并与之呈正相关。相较于挤压叠置区,拉分叠置区的断层数更多,分布更密且地层破碎变形程度更高。在构造特征及力学机制上,拉分叠置区均表现出更强的油气富集潜力。  相似文献   
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Currently available methods to prepare conducting polymers‐coated colloidal substrates for biomedical applications need to be improved because they involve the use of toxic reagents and tend to result in aggregated products with diminished conductivity. The work herein describes for the first time a facile strategy for preparing highly water‐dispersible, highly conductive, and biocompatible polypyrrole‐coated silica core–shell (SiO2@PPy) particles using only chondroitin sulfate (CS), a biologically derived polymer, as the stabilizer and dopant. The CS preadsorbed onto silica surface serves as a template to control the confined growth of the PPy shell and doping of in situ polymerized PPy shell. The thickness of the PPy shell can be tuned from 8 to 17 nm by varying the CS preadsorbed amount. Increasing the thickness of the adsorbed CS layer can control the deposition of thinner PPy shells on an SiO2 core surface to provide highly water‐dispersible SiO2@PPy particles. Moreover, CS‐doped SiO2@PPy particles exhibit conductivities as high as 5.3 S cm?1. The conductivity of the particles depends on the PPy mass loading and the doping level of the PPy shell. Furthermore, the SiO2@PPy particles exhibit good biocompatibility and therefore have potential applications in biomedicine.  相似文献   
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Surface contaminants, such as powder and thin film on various solid surfaces, were analyzed by ATR FT-IR microspectroscopy. An ATR accessory consisting of a miniature-Ge IRE with contact area smaller than 50 microm, in diameter was fabricated and employed for a non-destructive characterization. The IRE was pre-aligned and fixed onto a 15x Schwarzschild-Cassegrain infrared objective. Easy maneuvering of the microscope stage enabled an accumulative collection of the contaminant at the tip of a miniature-Ge IRE, where the contaminants were analyzed under the ATR condition. By making a gentle contact between the Ge tip and selected area on the surface, any removable contaminants were transferred onto the Ge tip where its molecular information was acquired without any interference from the solid substrate. A thin organic film (i.e., mineral oil or fluorolube) was coated at the tip of the IRE in order to enhance the collecting efficiency of the removable contaminants.  相似文献   
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