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1.
黄韵  马晓燕  林元华  王煦 《化学学报》2012,70(5):591-598
用聚乙二醇(PEG1500)和甲醇先后与共聚物(P(MMA-MAh))发生酯化反应,合成得到交联聚合物P(MMA-MAh)-PEG1500.以该交联聚合物P(MMA-MAh)-PEG1500、碳酸丙烯酯(PC)和锂盐(LiClO4)为三种组分制备凝胶聚合物电解质,电解质性能必会受到这些组分间存在的微观相互作用的影响.采用FTIR来研究PC和P(MMA-MAh)-PEG1500中存在的极性基团(C=O和C—O—C)与Li+的相互作用.对于PC/LiClO4和polymer/LiClO4体系,FTIR定量分析显示,极性基团对Li+的吸收系数分别为0.113和0.267,说明在红外光谱中Li+键合C=O和C—O—C极性基团比自由极性基团吸收灵敏度高;另外,计算该二体系中Li+键合极性基团(C=O和C—O—C)的当量百分数极限值分别为94%和45%,表明极性基团与Li+间存在的相互作用是可逆的,并且体系PC/LiClO4中相互作用强度大于体系polymer/LiClO4.  相似文献   

2.
IntroductionThesecondarylithium ionbatterieshaverecentlybecomeoneofthechemicalenergysourceswhichhavebeenresearchedanddevelopedintheworldbecauseoftheirbiggerspecificcapacity ,lighterweight ,higheroperatingvoltage ,longercycliclifeandbettersecuri ty[1— 3] .LiClO4 ,LiAsF6 andLiPF6 aremainlyusedaselectrolytesinthecommercializedlithium ioncellsintheworldinspiteoftheirdisadvantages:LiClO4 isalittleunsafewhichwillbedetonablewhenbeingbumpedandishygroscopic ;LiAsF6 ispoisonousanditisanenvironment…  相似文献   

3.
Al2O3掺杂的复合聚合物电解质室温电导研究   总被引:2,自引:1,他引:1  
1973年 Wright等[1] 首先报道了 PEO-Li+ 盐的固态聚电解质体系 ,我们从 90年代开始研究物质在聚合物电解质中的传输机理及固 -固界面动力学等问题 [2~ 4 ] .由于聚合物电解质易成膜 ,在制备高能密度全固态电池和光电化学器件等方面具有广泛的应用前景 .目前研究的聚电解质主要为通过加入金属盐而具有导电性的聚合物材料 .PEO具有良好的机械性能和化学稳定性 ,从而成为研究最为广泛的高分子材料 .金属盐溶于 PEO后 ,易形成晶态复合物 ,其电导率仅为 1 0 - 7~ 1 0 - 8S/cm,与应用中所要求的 1 0 - 3 S/cm相差甚远 .因此 ,如何提高 PE…  相似文献   

4.
含锂沸石Li-FER提高PEO复合聚合物电解质电导率   总被引:3,自引:0,他引:3  
通过离子交换方法使锂部分取代了镁碱沸石(FER)孔道壁上羟基中的氢,制得含锂沸石Li-FER. 将这种沸石作为无机填料加入到PEO/LiClO4聚合物电解质中,可以使其室温电导率提高三个数量级以上. 电化学测量表明, 锂离子与PEO和含锂沸石中氧的相互作用提高了聚合物电解质中锂离子的迁移数. 另一方面, 采用XRD, DSC, PLM等方法研究了电解质的结晶状况.结果表明, Li-FER可以作为PEO链段结晶的成核剂,使PEO电解质的晶粒得到细化, 结晶度降低,为Li+的传输提供了更多的非晶区通道. 这是Li-FER的加入促使PEO聚合物电解质电导率提高的两个主要原因.  相似文献   

5.
PEO/LiClO_4纳米SiO_2复合聚合物电解质的电化学研究   总被引:8,自引:0,他引:8  
将实验室制备的纳米二氧化硅和市售纳米二氧化硅粉末与PEO LiClO4复合 ,制得了复合PEO电解质 .它们的室温离子电导率可比未复合的PEO电解质提高 1~ 2个数量级 ,最高可以达到 1 2 4× 10 - 5S cm .离子电导率的提高有两方面的原因 :一是无机二氧化硅粉末的加入抑制了PEO的结晶 ,是二氧化硅粉末和聚合物电解质之间形成的界面对电导率的提高也有一定的作用 .在进一步加入PC EC(碳酸丙烯酯 碳酸乙烯酯 )混合增塑剂后制得的复合凝胶PEO电解质 ,可使室温离子电导率再提高 2个数量 ,达到 2× 10 - 3 S cm .用这种复合凝胶PEO电解质组装了Li|compositegelelectrolyte|Li半电池 ,并测量了该半电池的交流阻抗谱图随组装后保持时间的变化 ,实验观察到在保持时间为 144h以内钝化膜的交流阻抗迅速增大 ,但在随后的时间内逐渐趋于平稳 ,表明二氧化硅粉末的加入可以有效地抑制钝化膜的生长  相似文献   

6.
Solid polymer electrolyte blends were prepared with POSS-PEO(n=4)8 (3K), poly(ethylene oxide) (PEO(600K)), and LiClO4 at different salt concentrations (O/Li = 8/1, 12/1, and 16/1). POSS-PEO(n=4)8/LiClO4 is amorphous at all O/Li investigated, whereas PEO(600K) is amorphous only for O/Li = 8/1 and semicrystalline for O/Li = 12/1 and 16/1. The tendency of PEO(600K) to crystallize limited the amount of POSS-PEO(n=4)(8) that could be incorporated into the blends, so that the greatest incorporation of POSS-PEO(n=4)(8) occurred for O/Li = 8/1. Blends of POSS-PEO(n=4)(8)/PEO(600K)/LiClO4 (O/Li = 8/1 and 12/1) microphase separated into two amorphous phases, a low T(g) phase of composition 85% POSS-PEO(n=4)(8)/15% PEO(600K) and a high T(g) phase of composition 29% POSS-PEO(n=4)(8)/71% PEO(600K). For O/Li = 16/1, the blends contained crystalline (pure PEO(600K)), and two amorphous phases, one rich in POSS-PEO(n=4)(8) and one rich in PEO(600K). Microphase, rather than macrophase separation was believed to occur as a result of Li(+)/ether oxygen cross-link sites. The conductivity of the blends depended on their composition. As expected, crystallinity decreased the conductivity of the blends. For the amorphous blends, when the low T(g) (80/20) phase was the continuous phase, the conductivity was intermediate between that of pure PEO(600K) and POSS-PEO(n=4)(8). When the high T(g) (70/30, 50/50, 30/70, and 20/80) phase was the continuous phase, the conductivity of the blend and PEO(600K) were identical, and lower than that for the POSS-PEO(n=4)(8) over the whole temperature range (10-90 degrees C). This suggests that the motions of the POSS-PEO(n=4)(8) were slowed down by the dynamics of the long chain PEO(600K) and that the minor, low Tg phase was not interconnected and thus did not contribute to enhanced conductivity. At temperatures above T(m) of PEO(600K), addition of the POSS-PEO(n=4)(8) did not result in conductivity improvement. The highest RT conductivity, 8 x 10(-6) S/cm, was obtained for a 60% POSS-PEO(n=4)(8)/40% PEO(600K)/LiClO4 (O/Li = 12/1) blend.  相似文献   

7.
以聚偏氟乙烯-六氟丙烯P(VdF-HFP)聚合物为基体, 制备了含离子液体1-甲基-3-乙基咪唑六氟磷酸盐(EMIPF6)、用于锂离子电池的离子液体复合聚合物电解质[P(VdF-HFP)/LiPF6/EMIPF6/EC(碳酸乙烯酯)-PC(碳酸丙烯酯)]. 采用热重分析法以及燃烧实验测试了复合聚合物电解质的热稳定性. 离子电导率测试表明, 离子液体的存在显著改善了复合聚合物电解质的离子传输; 循环伏安测试表明, 添加剂EC和PC的加入提高了复合电解质的阴极稳定性, 制得的离子液体复合聚合物电解质在0.3-4.3 V 电压范围内稳定存在. Li4Ti5O12 和LiCoO2为电极材料、P(VdF-HFP)/LiPF6/EMIPF6/EC-PC 为电解质的半电池表现出优良的循环性能, 0.1C充放电倍率下, Li/LiCoO2和Li/Li4Ti5O12半电池的可逆容量分别为130和144 mAh·g-1. 但EC、PC在一定程度上降低了离子液体复合聚合物电解质的热稳定性.  相似文献   

8.
制备了高氯酸锂(LiClO4)与1,3-氮氧杂环-戊-2-酮(OZO)形成的二元熔盐电解质, 虽然先导物具有较高的熔点, 但二者可形成均一、稳定的共熔体系, 测试结果表明该熔盐体系具有低的共熔温度(-50 益). 红外光谱分析表明OZO 通过Li—O 键与LiClO4中Li+配位而破坏了LiClO4的离子键,形成很大的配位阳离子,削弱了阴阳离子间的库伦作用力; 同时Li—O 配位也导致OZO 分子间的氢键断裂, 因而体系的共熔温度较之纯物质熔点显著降低, 部分样品室温下以液体状态稳定存在. 采用交流阻抗法和循环伏安法对其电化学性质进行研究, 结果显示, 配比n(LiClO4):n(OZO)=1:4.5 的样品室温(25 ℃)电导率为0.66×10^-3 S·cm^-1, 80 ℃电导率为7.33×10^-3 S·cm^-1; 其电化学稳定电位窗口约为3.5 V.  相似文献   

9.
The chemical-covalent polyether-siloxane hybrids (EDS) doped with various amounts of LiClO4 salt were characterized by FT-IR, DSC, TGA, and solid-state NMR spectra as well as impedance measurements. These observations indicate that different types of complexes by the interactions of Li+ and ClO4- ions are formed within the hybrid host, and the formation of transient cross-links between Li+ ions and ether oxygens results in the increase in T(g) of polyether segments and the decrease in thermal stability of hybrid electrolyte. Initially a cation complexation dominated by the oxirane-cleaved cross-link site and PEO block is present, and after the salt-doped level of O/Li+ = 20, the complexation through the PPO block becomes more prominent. Moreover, a significant degree of ionic association is examined in the polymer-salt complexes at higher salt uptakes. A VTF-like temperature dependence of ionic conductivity is observed in all of the investigated salt concentrations, implying that the diffusion of charge carrier is assisted by the segmental motions of the polymer chains. The behavior of ion transport in these hybrid electrolytes is further correlated with the interactions between ions and polymer host.  相似文献   

10.
赵峰  钱新明  古宁宇  董绍俊 《分析化学》2002,30(10):1153-1157
用交流阻抗法研究了(PEO1)10LiClO4-Al2O3和(PEO2)16LiClO4-碳酸乙烯酯(EC)两种复合物电解质体系的电导率,给出了等效电路和各拟合元件的物理意义。当阻抗谱图发生严重变形时,提出一种比较简单的计算聚合物电解质电导率的方法--阻抗虚部最大值法。  相似文献   

11.
氧亚甲基连接的聚氧乙烯多嵌段聚合物的合成和性能研究   总被引:9,自引:0,他引:9  
用不同分子量聚乙二醇和二氯甲烷在氢氧化钾存在下合成几种氧亚甲基连接的聚氧乙烯多嵌段聚合物。某些聚合物具有较好的力学性能和一定的结晶度,聚合物与LiClO4络合物的室温电导率较高,35℃时的电导率随聚氧乙烯链段分子量变化出现峰值。以电导率最高的络合物为电解质,Na1+xV3O8复合物和Li片分别为正、负极组装了薄型锂电池并测定其放电性能。  相似文献   

12.
含氟聚合物杂化电解质膜的结构分析   总被引:1,自引:0,他引:1  
聚偏氟乙烯;共聚物;微孔膜;离子电导率;含氟聚合物杂化电解质膜的结构分析  相似文献   

13.
将聚氧化乙烯(PEO)和二(三氟甲基磺酰)亚胺锂(LiTFSI)混合(固定EO/Li摩尔比为13)后, 采用溶液浇注法制备了一系列不同Li1.5Al0.5Ge1.5(PO4)3(LAGP)与PEO质量比的LAGP-PEO(LiTFSI)固体复合电解质体系. 结合电化学阻抗法、 表面形貌表征以及与惰性陶瓷填料(SiO2, Al2O3) 性能的对比分析, 探讨了LAGP在固体复合电解质中的作用机理以及锂离子的导电行为. 结果表明, 在以LAGP为主相的固体复合电解质中, PEO主要处于无定形态, 整个体系主要为PEO与LiTFSI的络合相、 LAGP与PEO(LiTFSI)相互作用形成的过渡相和LAGP晶相. 其中LAGP作为主要的导电基体不仅起到降低PEO结晶度、 改善两相导电界面的作用; 同时自身也可以作为离子传输的通道, 降低锂离子迁移的活化能, 从而使离子电导率得到提高. 当LAGP与PEO的质量比为6:4时, 固体复合电解质的成膜性能最好, 离子电导率最高, 在30 ℃时为2.57×10-5 S/cm, 接近LAGP的水平, 电化学稳定窗口超过5 V.  相似文献   

14.
分别以硫酸/水和高氯酸锂/乙腈为电解质溶液, 采用循环伏安法在铂基底电极上电聚合制备了聚吡咯, 研究了电解质溶液对聚吡咯电聚合过程中过氧化行为的影响. 与硫酸/水溶液相比, 在高氯酸锂/乙腈溶液中电聚合制备的聚吡咯发生过氧化的峰电位正移了0.42 V. 采用原位傅里叶变换红外(in situ FTIR)光谱技术检测, 结果表明, 电聚合制备的聚吡咯在2种电解质溶液中均发生了过氧化反应, 其β-C经氧化生成C-OH或CO. 在硫酸/水溶液中, 部分聚吡咯发生电氧化降解生成CO2, 致使其共轭结构被破坏, 电导率迅速下降. 而在高氯酸锂/乙腈溶液中, 在更高的电位范围内, 聚吡咯并没有氧化降解成CO2.  相似文献   

15.
超支化聚氨酯固体电解质导电性能的光谱学研究   总被引:2,自引:0,他引:2  
用超支化聚氨酯 +线性聚氨酯作为基体 ,LiClO4作为离子源制得聚合物固体电解质 .用Raman光谱 ,FTIR光谱等光谱学方法研究了聚合物电解质中盐离子和聚合物基团之间的相互作用 .研究表明超支化聚氨酯对盐有较好的溶解作用 .研究还表明超支化聚氨酯加入有利于提高体系的电导率  相似文献   

16.
The electrical properties of polycrystalline lithium chloroboracite, Li4B7O12Cl, prepared by the sol-gel method were investigated in connection with their structure. Li4B7O12Cl pellets were prepared with different amounts of hydrochloric acid or ammonium chloride. The kind and amount of the chlorine source affected the formation of by-products (Li2B4O7, LiCl, a glass phase) and the morphology of the Li4B7O12Cl pellets. Thus their conductivity, which is dominated by grain boundary response owing to the high porosity of the materials, was also affected. The formation of Li2B4O7 as a by-product led to a higher activation energy and lower conductivity. In those pellets in which Li2B4O7 did form, an increase of the amount of glass phase led to higher conductivities.  相似文献   

17.
The dynamical properties of the polymer electrolyte poly(ethylene oxide) (PEO)LiClO(4) have been investigated by molecular dynamics simulations. The effect of changing salt concentration and temperature was evaluated on several time correlation functions. Ionic displacements projected on different directions reveal anisotropy in short-time (rattling) and long-time (diffusive) dynamics of Li(+) cations. It is shown that ionic mobility is coupled to the segmental motion of the polymeric chain. Structural relaxation is probed by the intermediate scattering function F(k,t) at several wave vectors. Good agreement was found between calculated and experimental F(k,t) for pure PEO. A remarkable slowing down of polymer relaxation is observed upon addition of the salt. The ionic conductivity estimated by the Nernst-Einstein equation is approximately ten times higher than the actual conductivity calculated by the time correlation function of charge current.  相似文献   

18.
一种新型聚合物电解质的研制   总被引:2,自引:0,他引:2  
合成了聚 (甲基丙烯酸甲酯 丙烯腈 甲基丙烯酸锂 ) (简记为PMAML)新型聚合物电解质基质材料 ,把它与聚偏氟乙烯 (PVDF)共混制备了凝胶化的聚合物电解质 .通过核磁共振波谱确定了PMAML的组份含量 ,并用扫描电镜观察了该聚合物基质膜的表面形貌 .利用交流阻抗技术测试了其电导率 ,室温下电导率可达2 5× 10 - 3S·cm- 1 .采用线性伏安扫描方法研究了该聚合物电解质的电化学稳定性 ,其电化学稳定窗口为4 5V .通过受限扩散实验测得电解质中离子的扩散系数为 8 12× 10 - 7cm2 ·s- 1 .组装的聚合物电解质锂离子电池首次充放电效率为 89% ,前 5次循环容量基本稳定 .  相似文献   

19.
A novel single lithium‐ion (Li‐ion) conducting polymer electrolyte is presented that is composed of the lithium salt of a polyanion, poly[(4‐styrenesulfonyl)(trifluoromethyl(S‐trifluoromethylsulfonylimino)sulfonyl)imide] (PSsTFSI?), and high‐molecular‐weight poly(ethylene oxide) (PEO). The neat LiPSsTFSI ionomer displays a low glass‐transition temperature (44.3 °C; that is, strongly plasticizing effect). The complex of LiPSsTFSI/PEO exhibits a high Li‐ion transference number (tLi+=0.91) and is thermally stable up to 300 °C. Meanwhile, it exhibits a Li‐ion conductivity as high as 1.35×10?4 S cm?1 at 90 °C, which is comparable to that for the classic ambipolar LiTFSI/PEO SPEs at the same temperature. These outstanding properties of the LiPSsTFSI/PEO blended polymer electrolyte would make it promising as solid polymer electrolytes for Li batteries.  相似文献   

20.
Thin films of the perchlorate salt of an [Os(N,N'-alkylated-2,2'-biimidazole3)2+/3+-containing polymer have been formed on planar platinum microelectrodes. The electrochemical response associated with the Os2+/3+ couple occurs at -0.19 V. In aqueous perchlorate media at near-neutral pH the voltammetric response is close to that expected for an electrochemically reversible reaction involving a surface-confined reactant. Chronoamperometry conducted on a microsecond time scale indicates that the film and solution resistances are comparable for low concentrations of supporting electrolyte. However, for LiClO4 concentrations greater than 0.4 M, RFilm contributes less than 25% of the overall cell resistance. These results suggest that when the film is dehydrated and the density of redox centers is increased, electron or hole hopping dominates the rate of homogeneous charge transport through the film. The rate of homogeneous charge transport, characterized by D(CT)1/2Ceff, where DCT is the homogeneous charge transport diffusion coefficient and Ceff is the effective concentration of osmium centers within the film, depends weakly on the concentration of LiClO4 as supporting electrolyte decreasing from (8.1 +/- 0.16) x 10(-9) to (4.7 +/- 0.4) x 10(-9) mol cm(-2) s(-1/2) as the perchlorate concentration increases from 0.1 to 1.0 M. These values are about 2 orders of magnitude lower than those of the chemically cross-linked chloride salt of the polymer. The rate of heterogeneous electron transfer is unusually rapid in this system and increases from (5.2 +/- 0.4) x 10(-3) to (7.8 +/- 0.4) x 10(-3) cm s(-1) on going from 0.1 to 0.4 M LiClO4 before becoming independent of the supporting electrolyte concentration at (9.2 +/- 0.6) x 10(-3) cm s(-1) for [LiClO4] > or = 0.6 M.  相似文献   

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