|
|
|
题名
|
作者
|
年代
|
出处
|
被引量
|
| 1 | NIR-IIb excitable bright polymer dots with deep-red emission for in vivo through-skull three-photon fluorescence bioimaging显示文摘It is of great significance to study the brain structure and function in deep-tissue for neuroscience research and bio-medical applications because of the urgent demand for precise theranostics.Three-photon fluorescence microscopic(3PFM)bioimaging excited by the light in near-infrared IIb(NIR-IIb,1,500–1,700 nm)spectral region is one of the most promising imaging techniques with the advantages of high spatial resolution,large imaging depth,and reduced scattering.Herein,a type of NIR-IIb light excitable deep-red emissive semiconducting polymer dots(P-dots)with bright 3PF and large three-photon absorption cross-section(σ3)at 1,550 nm was prepared.Then the P-dots were functionalized with polystyrene polymer polystyrene graft ethylene oxide functionalized with carboxyl groups(PS-PEG-COOH)and modified with NH2-poly(ethylene glycol)(PEG)to synthesis photochemically stable and biocompatible P-dots nanoparticles(NPs).Further the P-dots NPs were utilized for in vivo 3PFM bioimaging of cerebral vasculature with and without the brain skull under 1,550 nm femtosecond(fs)laser excitation.In vivo 3PFM bioimaging of the mice cerebral vasculature at various vertical depths was obtained.Moreover,a vivid three-dimensional structure of the mice vascular architecture beneath the skull was reconstructed.At the depth of 350μm beneath the brain skull,3.8μm blood vessels could still be clearly recognized.NIR-IIb excitable P-dots assisted 3PFM bioimaging has great potential in accurate deep tissue bioimaging. | Nuernisha Alifu Abudureheman Zebibula Hequn Zhang Huwei Ni Liang Zhu Wang Xi Yalun Wang Xueliang Zhang Changfeng Wu Jun Qian | 2020 | Nano Research2020,13,10: | 6 |
| 2 | Study on SAGD technology for ultra heavy oil in dual horizontal wells 显示文摘 | XI Changfeng MA Desheng LI Xiuluan | 2010 | Journal of Southwest Petroleum University (Science & Technology Edition)2010,32,4: | 1 |
| 3 | Displacement and development characteristics of fire flooding of vertical wells in old heavy oil areas显示文摘As the vertical-well fire flooding technology is industrially applied in the steam-injection old heavy oil areas of Xinjiang and Liaohe oilfields,its enhanced oil recovery potential is gradually clear.According to laboratory experiment,field test and reservoir engineering,the displacement characteristics of verticalwell fire flooding in the steam-injection old heavy oil areas are systematically investigated.Laboratory experiments and core data show that the vertical-well fire flooding has significantly high flooding ef-ficiency,no residual oil are remained in the firing front sweeping zone,and the lateral sweep efficiency and ultimate recovery can be achieved.The vertical-well fire flooding is a strategic replacement technology to enhance the recovery greatly.Development characteristics and advantages of areal and linear fire flooding are well investigated,and research results are applied in the design of industrial test plan of fire flooding in the Hongqian block,Xinjiang.The research shows that the linear well pattern has advantages of easy construction of ground facilities and management,less well of stage management,simple matching technology and easy achievement of purposeful control for fire front;the areal well pattern has advantages in reducing the air/oil ratio during the fire flooding period,increasing the total recovery rate of reservoirs and reducing the geological and reservoir management risks.To select well patterns of fire flooding,some factors such as geology,reservoir,fluid properties,oil price,and reservoir development degree should be mainly considered.In the Hongqian block,an improved linear well pattern with a combination of new wells and old wells is applied,this not only absorb experiences of linear well pattern pilot test,but also use advantages of areal well pattern. | Wenlong Guan Xialin Zhang Changfeng Xi Xiaochun Wang Fengxiang Yang Xiaorong Shi Qiu Li | 2018 | Petroleum Research2018,3,2: | 0 |
| 4 | Erratum to:NIR-IIb excitable bright polymer dots with deep-red emission for in vivo through-skull three-photon fluorescence bioimaging显示文摘Erratum to Nano Research 2020,13(10):2632–2640 http://gffzzd3cc09b8251d45dfsppqfbwcbn6f96c6k.ffgz.tsg.suse.edu.cn/10.1007/s12274-020-2902-x Figures S5 and S6 in the Electronic Supplementary material(ESM)were unfortunately mistakenly used.This error did not affect any of the conclusions from the published paper.Instead of Figure S5 Microscopic images of tissue sections from mice. All tissues of (a)heart, (b) lung, (c) liver, (d) spleen, (e) kidney and (f) brain were excised fromthe experimental mice 24 hours after the administration of P-dots (200 μL,0.125 mg·mL^(-1) in 1 × PBS, right) and the control mice (left) treated with 1 × PBS(200 μL). Scale bar: 50 μm. | Nuernisha Alifu Abudureheman Zebibula Hequn Zhang Huwei Ni Liang Zhu Wang Xi Yalun Wang Xueliang Zhang Changfeng Wu Jun Qian | 2022 | Nano Research2022,15,6: | 0 |
| 5 | Miscibility of light oil and flue gas under thermal action显示文摘The miscibility of flue gas and different types of light oils is investigated through slender-tube miscible displacement experiment at high temperature and high pressure.Under the conditions of high temperature and high pressure,the miscible displacement of flue gas and light oil is possible.At the same temperature,there is a linear relationship between oil displacement efficiency and pressure.At the same pressure,the oil displacement efficiency increases gently and then rapidly to more than 90% to achieve miscible displacement with the increase of temperature.The rapid increase of oil displacement efficiency is closely related to the process that the light components of oil transit in phase state due to distillation with the rise of temperature.Moreover,at the same pressure,the lighter the oil,the lower the minimum miscibility temperature between flue gas and oil,which allows easier miscibility and ultimately better performance of thermal miscible flooding by air injection.The miscibility between flue gas and light oil at high temperature and high pressure is more typically characterized by phase transition at high temperature in supercritical state,and it is different from the contact extraction miscibility of CO_(2) under conventional high pressure conditions. | XI Changfeng WANG Bojun ZHAO Fang HUA Daode QI Zongyao LIU Tong ZHAO Zeqi TANG Junshi ZHOU You WANG Hongzhuang | 2024 | Petroleum Exploration and Development2024,51,1: | 0 |
| 6 | Oxidization characteristics and thermal miscible flooding of high pressure air injection in light oil reservoirs显示文摘Physical modeling,numerical simulation and field case analysis were carried out to find out the subsurface thermal oxidation state,thermal oxidation front characteristics and production dynamic characteristics of high pressure air injection thermal oxidation miscible flooding technology.The lighter the composition and the lower the viscosity of the crude oil,the lower the fuel consumption and the combustion temperature are.The thermal oxidation front of light oil and volatile oil can advance stably,and a medium-temperature thermal oxidation stable displacement state can be formed in the light oil reservoir under high pressure conditions.With strong thermal gasification and distillation,light oil and volatile oil are likely to form a single phase zone of gasification and distillation with thermal flue gas at the high-temperature and high-pressure heat front,finally,an air-injection thermal miscible front.In light oil reservoirs,the development process of high-pressure air-injection thermal miscible flooding can be divided into three stages:boosting pressure stage,low gas-oil ratio and high-efficiency stable production stage and high gas-oil ratio production stage.Approximately 70%of crude oil is produced during the boosting pressure stage and low gas-oil ratio high-efficiency and stable production stage. | XI Changfeng WANG Bojun ZHAO Fang LIU Tong QI Zongyao ZHANG Xialin TANG Junshi JIANG Youwei GUAN Wenlong WANG Hongzhuang HE Dongbo SONG Xinmin HUA Daode ZHANG Xiaokun | 2022 | Petroleum Exploration and Development2022,49,4: | 0 |