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1.
以二重氢键为引导,二硫键连接疏水性聚乳酸(PLA)和亲水性β-环糊精(β-CD)合成了嵌段共聚物β-CD-PLA。采用1 H-NMR和GPC对嵌段共聚物β-CD-PLA的结构进行了表征,以芘作为荧光分子探针对嵌段共聚物β-CD-PLA自组装胶束的性质进行了表征,采用动态光散射纳米粒度仪(DLS)对自组装胶束的粒径进行了测试。结果表明:在二重氢键的引导作用力和碘的氧化作用下,中间体脱去保护基形成双二硫键,形成目标嵌段共聚物β-CD-PLA,该嵌段共聚物能够在水中自组装形成纳米胶束,临界胶束浓度(CMC)为0.089mg/mL,在稀溶液中具有良好的稳定性,自组装形成空白胶束的粒径为31nm,阿霉素盐酸盐(DOX)载药胶束的粒径为42nm。  相似文献   

2.
PAn-PEG-PAn三嵌段共聚物的合成和表征   总被引:4,自引:0,他引:4  
在合成α,ω-双(对氨基苯基)聚乙二醇(BAPPEG)的基础上, 用化学氧化共聚法制备了PAn-PEG-PAn三嵌段共聚物. 研究了共聚时苯胺(An)与BAPPEG摩尔比(r)对共聚物的化学组成、UV-Vis谱图、热稳定性和在水溶液中的自组装特性的影响. 结果表明:随着r的增加, 共聚物中PAn链段的含量增大;其UV-Vis谱图中对应PAn链段的吸收峰出现红移, 且红移的程度增加; 热稳定性提高. 三嵌段共聚物在水中表现出自组装特性: 随着r的增加, 先形成粒径约为90 nm的PAn链段/PEG链段球型核壳胶束, 然后形成长为400~800 nm, 直径约为30 nm的棒状结构, 和棒状结构聚集形成的网状结构, 最后又变成球型胶束.  相似文献   

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本文以二硫代苯甲酸异丁腈酯(CPDB)作为链转移剂,AIBN为引发剂,以N-异丙基丙烯酰胺(NIPAM)和2-(4-苯基偶氮苯氧基)乙基丙烯酸酯(PAPEA)为单体,利用RAFT聚合法合成了PNIPAM及其嵌段共聚物PNIPAM-b-PPAPEA。利用FT-IR、~1H NMR、GPC对PNIPAM及其嵌段共聚物的结构进行了表征。同时,通过TEM、DLS和UV等手段测定了该嵌段共聚物胶束的形貌及大小、胶束的光响应性和温度响应性。结果表明,PAPEA的RAFT聚合反应动力学曲线呈良好的线性关系,PNIPAM-b-PPAPEA分子量分布小于1.3;PNIPAM-b-PPAPEA在水相中自组装形成球形胶束,其粒径随PPAPEA链段分子量的增加而增大;胶束呈现出良好的光响应性;随着温度的升高,胶束粒径变小,显示出明显的温度响应性。  相似文献   

4.
聚L-丙氨酸-聚乙二醇嵌段共聚物的胶束化行为研究   总被引:8,自引:3,他引:5  
以氨基聚乙二醇单甲醚(MPEG-NH2)为大分子引发剂, 采用开环聚合方法合成了聚L-丙氨酸-聚乙二醇嵌段共聚物(PAME), 并对其结构进行了表征; 用圆二色谱(CD)研究了嵌段共聚物在水溶液中的二级结构, 用芘荧光探针技术研究了共聚物胶束的形成及其临界胶束浓度(CMC), 利用动态光散射(DLS)和透射电镜(TEM)研究了胶束的粒径分布和形态. 结果表明, 在水溶液中共聚物链以α-螺旋构象形式存在, 在一定条件下嵌段共聚物能够形成球形的稳定胶束, PAME-1形成胶束的CMC为1.99×10-5 mol/L, CMC值受共聚物中聚L-丙氨酸(PLA)链段含量的影响.  相似文献   

5.
以RAFT聚合制备了十二烷基末端聚乙二醇-b-聚(N-丙烯酰脯氨酸甲酯)两嵌段聚合物D12-EA,并用体积排除色谱和核磁氢谱表征了聚合物的结构。结合紫外-可见光(UV-Vis)、动态光散射(DLS)、静态光散射(LLS)、透射电镜(TEM)以及变温核磁氢谱(1 H NMR)研究了其在水溶液中的可逆再组装行为。不同于普通刺激响应性两嵌段在水溶液中由单分子链组装为纳米聚集体,在温度低于温敏性聚丙烯酰脯氨酸甲酯嵌段(A嵌段)浊点(CP)时,D12-EA两嵌段水溶液自组装形成粒径为20nm的球形胶束;而当温度高于CP时,球形胶束能够可逆地再组装为粒径约90nm的囊泡。变温1 H NMR揭示了当温度高于CP时,A嵌段由亲水壳层迁移至疏水核层,从而使体系再组装为自由能更低的结构。  相似文献   

6.
利用核磁共振方法研究了AB型双嵌段共聚物(MPEG45-b-PA32)在选择性溶剂中的自组装行为及胶束化过程.嵌段共聚物在三氟乙酸中聚氨基酸和聚乙二醇链段均处于自由运动状态,聚丙氨酸链段为无规线团结构.在向该溶液中逐渐加入氘代水的过程中,聚丙氨酸链段又重新聚集形成规整的二级结构.结合1H-NMR和COSY谱分析,结果显示这一自组装过程伴随着聚(L-丙氨酸)链段由无规线团向α-螺旋结构的构象转变,同时嵌段共聚物逐渐形成核-壳型胶束结构.利用透射电镜观察了所形成胶束的形态,嵌段共聚物主要形成粒径150 nm到220 nm的球形胶束.  相似文献   

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采用耗散粒子动力学方法(dissipative particle dynamics,DPD)研究了coil-rod-coil(CRC)三嵌段刚柔共聚物在选择性溶剂中的自组装.在链选择性溶剂中,刚性棒长Lr与柔性链长Lc都影响着CRC溶液的自组装及相转变.随Lr的增大,棒与溶剂的接触面变大界面能升高,为减小体系的自由能,棒嵌段趋向聚集以减少接触面与界面能.随Lc的增大,链的自由伸展构象熵增大,影响着棒嵌段聚集体结构的形成,使棒嵌段的分布更加分散.在研究溶剂性质aCS与棒长Lr对体系自组装影响的情况中,观察到两类有趣的相结构:球形相和胶束相.随着参数aCS从亲链变为中性再到亲棒,在球形相内部,不仅棒相区由球体内部移向球表面,而且棒相区与链相区的层次分布也发生了明显地变化.同样,Lr的改变也影响着球形相内部相区的分布,同时诱导了不同球形相间的构型转变.胶束相包括分段胶束和螺旋胶束两种,形成于棒长较长的情况,胶束相中棒嵌段的排列呈现出明显的液晶相结构.  相似文献   

8.
采用动态激光光散射及环境扫描电镜研究了羧甲基纤维素型高分子表面活性剂在水溶液中的胶束形态 .结果表明 ,共聚物在水溶液中的形态完全不同于羧甲基纤维素分子 ,亲水疏水链段的引入 ,使共聚物分子聚集形成了以疏水链段为核心的棍状胶束结构 .高分子表面活性剂水溶液体系的归一化一级相关函数不符合单指数衰减 ,表明胶束形态的多分散性 .在 0 .0 0 5%~ 1 %浓度范围内 ,胶束粒子大小均分布在两个区域 ,随共聚物浓度增大 ,低粒径区保持在 3 0~ 1 0 0nm范围 ,为单分子区 ;而高粒径区随浓度增大移向更高值 ,表明多分子胶束不断长大 .  相似文献   

9.
用单氨基聚乙二醇(m PEG-NH2)引发ε-三氟乙酰基-L-赖氨酸-N-羧酸酐(Lys(TFA)-NCA)开环聚合,得到了聚乙二醇-b-聚(ε-三氟乙酰基-L-赖氨酸)(PEG-b-PTLL)两嵌段共聚物.将PTLL链段末端的NH2与2-溴异丁酰溴反应得到了大分子引发剂,通过原子转移自由基聚合(ATRP)的方法分别分别引发苯乙烯(St)和N-异丙基丙烯酰胺(NIPAM)聚合,制备了结构明确、聚合度可控的聚乙二醇-b-聚(ε-三氟乙酰基-L-赖氨酸)-b-聚苯乙烯(PEG-b-PTLL-b-PS)和聚乙二醇-b-聚(ε-三氟乙酰基-L-赖氨酸)-b-聚(N-异丙基丙烯酰胺)(PEG-b-PTLL-b-PNIPAM)三嵌段杂化共聚肽.将PEG-b-PTLL-b-PNIPAM去保护后得到温度和p H响应三嵌段共聚物;将PEG-b-PTLL-b-PS去保护后得到p H响应的两亲性三嵌段共聚物.研究了PEG45-b-PLL106-b-PS20在混合溶剂H2O/DMF中的p H诱导胶束化行为.TEM结果表明,当水溶液p H小于PLL的p Ka时,PEG45-bPLL106-b-PS20形成球状胶束,当水溶液p H大于PLL的p Ka时,PLL转变成α-螺旋,PEG45-b-PLL106-b-PS20组装成盘状胶束.  相似文献   

10.
以α-溴乙苯为引发剂,溴化亚铜为催化剂,2,2'-联吡啶为配体,用原子转移自由基聚合(ATRP)法合成了结构一定的嵌段共聚物聚苯乙烯-b-聚丙烯酸丁酯(PSt-b-PBA).经水解制备了双亲性嵌段共聚物聚苯乙烯-b-聚丙烯酸(PSt-b-PAA);采用单溶剂溶解法配制了PSt-b-PAA在甲苯中的反胶束溶液;以极性荧光化合物N-1-萘乙二胺盐酸盐(NEAH)为极性微区探针,用荧光光谱法并配合透射电镜观察探索了双亲嵌段共聚物PSt-b-PAA在甲苯溶液中的自聚集行为,考察了双亲性嵌段共聚物浓度、链结构及温度等因素对反胶束化行为的影响规律.结果表明,亲水链PAA短而亲油链PSt长的双亲嵌段共聚物PSt-b-PAA,用单溶剂溶解法可使其在甲苯中发生自聚集,形成以亲水段为核,疏水段为壳的星状反胶束结构;反胶束为10-20nm的球形聚集态结构;PSt-b-PAA的自聚集行为及临界胶束浓度与分子链的微结构和温度等因素相关,且随着共聚物浓度的增大,小胶束会逐渐结合形成大的纺垂状聚集体.  相似文献   

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A low barrier in the reaction pathway between the double Rydberg isomer of OH(3) (-) and a hydride-water complex indicates that the former species is more difficult to isolate and characterize through anion photoelectron spectroscopy than the well known double Rydberg anion (DRA), tetrahedral NH(4) (-). Electron propagator calculations of vertical electron detachment energies (VEDEs) and isosurface plots of the electron localization function disclose that the transition state's electronic structure more closely resembles that of the DRA than that of the hydride-water complex. Possible stabilization of the OH(3) (-) DRA through hydrogen bonding or ion-dipole interactions is examined through calculations on O(2)H(5) (-) species. Three O(2)H(5) (-) minima with H(-)(H(2)O)(2), hydrogen-bridged, and DRA-molecule structures resemble previously discovered N(2)H(7) (-) species and have well separated VEDEs that may be observable in anion photoelectron spectra.  相似文献   

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Huang FQ  Ibers JA 《Inorganic chemistry》2001,40(10):2346-2351
The alkali metal/group 4 metal/polychalcogenides Cs(4)Ti(3)Se(13), Rb(4)Ti(3)S(14), Cs(4)Ti(3)S(14), Rb(4)Hf(3)S(14), Rb(4)Zr(3)Se(14), Cs(4)Zr(3)Se(14), and Cs(4)Hf(3)Se(14) have been synthesized by means of the reactive flux method at 823 or 873 K. Cs(4)Ti(3)Se(13) crystallizes in a new structure type in space group C(2)(2)-P2(1) with eight formula units in a monoclinic cell at T = 153 K of dimensions a = 10.2524(6) A, b = 32.468(2) A, c = 14.6747(8) A, beta = 100.008(1) degrees. Cs(4)Ti(3)Se(13) is composed of four independent one-dimensional [Ti(3)Se(13)(4-)] chains separated by Cs(+) cations. These chains adopt hexagonal closest packing along the [100] direction. The [Ti(3)Se(13)(4-)] chains are built from the face- and edge-sharing of pentagonal pyramids and pentagonal bipyramids. Formal oxidation states cannot be assigned in Cs(4)Ti(3)Se(13). The compounds Rb(4)Ti(3)S(14), Cs(4)Ti(3)S(14), Rb(4)Hf(3)S(14), Rb(4)Zr(3)Se(14), Cs(4)Zr(3)Se(14), and Cs(4)Hf(3)Se(14) crystallize in the K(4)Ti(3)S(14) structure type with four formula units in space group C(2)(h)()(6)-C2/c of the monoclinic system at T = 153 K in cells of dimensions a = 21.085(1) A, b = 8.1169(5) A, c = 13.1992(8) A, beta = 112.835(1) degrees for Rb(4)Ti(3)S(14);a = 21.329(3) A, b = 8.415(1) A, c = 13.678(2) A, beta = 113.801(2) degrees for Cs(4)Ti(3)S(14); a = 21.643(2) A, b = 8.1848(8) A, c = 13.331(1) A, beta = 111.762(2) degrees for Rb(4)Hf(3)S(14); a = 22.605(7) A, b = 8.552(3) A, c = 13.880(4) A, beta = 110.919(9) degrees for Rb(4)Zr(3)Se(14); a = 22.826(5) A, b = 8.841(2) A, c = 14.278(3) A, beta = 111.456(4) degrees for Cs(4)Zr(3)Se(14); and a = 22.758(5) A, b = 8.844(2) A, c = 14.276(3) A, beta = 111.88(3) degrees for Cs(4)Hf(3)Se(14). These A(4)M(3)Q(14) compounds (A = alkali metal; M = group 4 metal; Q = chalcogen) contain hexagonally closest-packed [M(3)Q(14)(4-)] chains that run in the [101] direction and are separated by A(+) cations. Each [M(3)Q(14)(4-)] chain is built from a [M(3)Q(14)] unit that consists of two MQ(7) pentagonal bipyramids or one distorted MQ(8) bicapped octahedron bonded together by edge- or face-sharing. Each [M(3)Q(14)] unit contains six Q(2)(2-) dimers, with Q-Q distances in the normal single-bond range 2.0616(9)-2.095(2) A for S-S and 2.367(1)-2.391(2) A for Se-Se. The A(4)M(3)Q(14) compounds can be formulated as (A(+))(4)(M(4+))(3)(Q(2)(2-))(6)(Q(2-))(2).  相似文献   

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Pure, highly explosive CF(3)C(O)OOC(O)CF(3) is prepared for the first time by low-temperature reaction between CF(3)C(O)Cl and Na(2)O(2). At room temperature CF(3)C(O)OOC(O)CF(3) is stable for days in the liquid or gaseous state. The melting point is -37.5 degrees C, and the boiling point is extrapolated to 44 degrees C from the vapor pressure curve log p = -1875/T + 8.92 (p/mbar, T/K). Above room temperature the first-order unimolecular decay into C(2)F(6) + CO(2) occurs with an activation energy of 129 kJ mol(-1). CF(3)C(O)OOC(O)CF(3) is a clean source for CF(3) radicals as demonstrated by matrix-isolation experiments. The pure compound is characterized by NMR, vibrational, and UV spectroscopy. The geometric structure is determined by gas electron diffraction and quantum chemical calculations (HF, B3PW91, B3LYP, and MP2 with 6-31G basis sets). The molecule possesses syn-syn conformation (both C=O bonds synperiplanar to the O-O bond) with O-O = 1.426(10) A and dihedral angle phi(C-O-O-C) = 86.5(32) degrees. The density functional calculations reproduce the experimental structure very well.  相似文献   

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Summary Dichlorobis(methylsalicylato)titanium(IV) reacts with potassium or amine salts of dialkyl or diaryl dithiocarbamates in 11 and 12 molar ratios in anhydrous benzene (room temperature) or in boiling CH2Cl2 to yield mixed ligand complexes: (AcOC6H4O)2 Ti(S2CNR2)Cl (1) and (AcOC6H4O)2 Ti(S2CNR2)2 (2), R=Et, n-Pr, n-Bu, cyclo-C4H8 and cyclo-C5H10. These compounds are moisture sensitive and highly soluble in polar solvents. Molecular weight measurement in conjunction with i.r.,1H and13C n.m.r. spectral studies suggest coordination number 7 and 8 around titanium(IV) in (1) and (2) respectively.  相似文献   

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