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1.
与富勒烯受体材料相比,非富勒烯受体材料具有更强光吸收、可调的带隙和前沿电子轨道能级等优点。本工作中,我们将报道新型含萘并二噻吩小分子受体材料的设计与合成。该材料的吸电子端基与稠环核之间含有一个噻吩桥,因此与不含噻吩桥的同类受体材料相比,该分子(DTNIT)具有更窄的带隙,能与经典的宽带隙聚合物给体PBDB-T实现更好的吸收互补。基于PBDB-T:DTNIT的聚合物太阳能电池实现了0.91 V的开路电压、增大的短路电流(14.42 mA?cm~(-2)),以及7.05%的光电转换效率。该光电转换效率接近于基于PBDB-T:PC71BM的倒置聚合物太阳能电池的效率(7.12%)。该工作不仅报道了一个新型高效非富勒烯受体的合成方法,同时提供了一种非富勒烯受体材料的能级调控策略。  相似文献   

2.
稠环电子受体光伏材料   总被引:1,自引:0,他引:1  
代水星  占肖卫 《高分子学报》2017,(11):1706-1714
基于非富勒烯受体的有机太阳能电池是化学和材料领域的热点前沿之一,中国领跑这个热点前沿.中国学者在非富勒烯受体材料方面取得了一系列重要的创新成果.我们提出了"稠环电子受体(FREA)"这一新概念,构建了高性能稠环电子受体新体系,发明了明星分子ITIC.我们的原创性工作引起了国内外同行的广泛关注和跟进.目前,基于稠环电子受体的有机太阳能电池效率已达到13%~14%,超过富勒烯体系.ITIC等稠环电子受体的出现颠覆了富勒烯受体在有机太阳能电池领域的统治地位,开创了有机太阳能电池的非富勒烯时代.本文简要评述了我们在高性能稠环电子受体设计与器件应用中的研究进展,并展望稠环电子受体的未来发展.  相似文献   

3.
非富勒烯太阳能电池具有给受体能级可调、吸收范围宽及可溶液加工等优势,已经成为太阳能电池领域发展趋势。在高性能材料开发及器件结构优化的推动下,能量转换效率已经突破11%。其中,苝二酰亚胺(PDI)类分子价格低廉且具有良好的稳定性及较高的电子迁移率,已经发展成为重要的非富勒烯受体材料。然而,PDI类材料刚性稠环结构使得分子间具有强烈的π-π相互作用(受体-受体分子间及给体-受体分子间),导致共混体系相分离尺寸可控性差,给受体分子间共混程度难于调控,从而发生严重的成对以及非成对电荷复合。本文从分子间作用力入手(溶剂-溶质、给体-受体分子间作用力)详述了非富勒烯共混体系相分离结构、相区尺寸及共混相含量调节的相关原理及方法。研究表明基于PDI共混体系,固-液相分离及分子扩散能力是决定相分离结构的本质因素,通过调控给受体比例及热退火温度实现了孤岛及互穿网络结构的构筑。同时,通过平衡受体分子间π-π作用及给受体间电荷转移,实现了低相容性及高相容性共混体系相区尺寸的可控调节。在此基础上,利用添加剂手段通过调节溶剂与溶质分子间的溶度参数差值,实现了薄膜内共混相的可控调节,并针对具有不同相容性共混体系给出了添加剂的选择原则。  相似文献   

4.
设计合成了一个基于引达省并二噻吩吡喃的稠环有机受体材料.吡喃环的引入提高了分子中间核的给电子能力,使分子的最高占有轨道能级(HOMO)显著提升,进而使分子的吸收光谱红移.通过理论计算,证实了分子的设计思路的可行性.紫外吸收光谱分析发现,该受体材料具有较窄的带隙(1.30 eV),其最大吸收峰在843 nm,吸收截止到956 nm,有利于活性层材料对太阳光的充分吸收利用.将该受体材料与聚合物给体材料PM6共混制备有机太阳能电池器件,获得了0.86 V的开路电压(opencircuit voltage,V_(oc))、20.61 mA cm~(-2)的短路电流密度(short-circuit current density,J_(sc))和10.85%的能量转化效率(power conversion efficiency,PCE).  相似文献   

5.
高燕  徐倩  黄浩  李翠红 《化学教育》2022,43(16):99-109
非富勒烯稠环电子受体因具有易调控的分子结构、宽且强的光谱吸收及较高的光电转换效率吸引了科研人员的广泛的研究兴趣。非富勒烯稠环电子受体分子的中心给电子单元一般为较大的共轭稠环平面结构,这类稠环结构通常是经过多步反应得到,包括合成成本高、难度大且产率低的关环反应过程。研究人员在分子中引入带有O、F、N、Se等杂原子单元, 利用分子内非共价键相互作用来锁定分子骨架得到类似稠环结构的非共价稠环电子受体材料,减少合成过程中关环反应的使用,使得合成更容易,成本更低;利用分子内的非共价相互作用可以增强分子平面性,拓展吸收光谱,降低材料的制备成本。综述了近年来利用分子内非共价键相互作用合成非富勒烯受体材料及其在有机太阳能电池中应用的研究进展, 并展望了其发展趋势和应用前景。  相似文献   

6.
我们用宽带隙聚合物FTAZ(苯并二噻吩-二氟苯并氮三唑共聚物)作为给体,窄带隙稠环电子受体FOIC(六噻吩稠环-氟代腈基茚酮类化合物)作为受体,中带隙稠环电子受体IDT-IC (引达醒-腈基茚酮类化合物)和IDT-NC (引达醒-腈基苯并茚酮类化合物)分别作为第三组分,制备了三元共混有机太阳能电池,研究了第三组分端基对器件性能的影响。IDT-IC和IDT-NC具有相似的化学结构,仅端基不同;IDT-IC端基是苯环,而IDT-NC端基是萘环。与IDT-IC相比,IDT-NC吸收光谱红移40nm,LUMO能级下移0.11 eV,电子迁移率提高50%。基于FTAZ:FOIC,FTAZ:IDT-IC,FTAZ:IDT-NC二元共混体系的有机太阳能电池效率分别为9.73%,7.48%,7.68%。FTAZ:FOIC:IDT-IC和FTAZ:FOIC:IDT-NC三元共混器件的效率分别提升到11.2%和10.4%。对于FTAZ:FOIC:IDT-IC三元共混器件,由于IDT-IC比FOIC具有更高的LUMO能级,开路电压(V_(OC))随着IDT-IC含量的增多而增加。由于IDT-IC与FOIC吸收光谱高度互补,短路电流(J_(SC))也显著提高。第三组份IDT-IC的加入改善了薄膜形貌和载流子传输,填充因子(FF)有所提高。对于FTAZ:FOIC:IDT-NC三元共混器件,由于IDT-NC比FOIC具有更高的LUMO能级,V_(OC)随着IDT-NC含量的增多而增加;但由于IDT-NC的LUMO能级比IDT-IC的LUMO能级低,其V_(OC)比FTAZ:FOIC:IDT-IC体系低。由于FOIC和IDT-NC吸收光谱高度重叠,J_(SC)降低。第三组份IDT-NC的加入改善了薄膜形貌和载流子传输,FF提高,甚至比FTAZ:FOIC:IDT-IC体系有更好的载流子传输和FF。  相似文献   

7.
非富勒烯电子受体由于其吸收强,能级可调,稳定性好等优点,近年来受到研究者的广泛关注,并且光电转换效率已突破14%。在本研究中,我们设计并合成了一种结构简单,易于合成的非稠环结构的非富勒烯电子受体ICTP。通过合理的结构设计,利用分子内的非共价作用力,实现了高的空间平面性。其在长波长区域宽且强的吸收和合适的能级水平,使得ICTP适合与许多聚合物给体材料搭配,制备太阳能电池。基于PBDB-T:ICTP的聚合物太阳能电池取得了4.43%的光电转换效率和0.97 V的开路电压。  相似文献   

8.
分别以绕丹宁和噻唑烷-2,4-二酮单元为端基、IDT为中心核设计合成了一个新型不对称结构的有机小分子受体IDT-2,并通过与两端均以绕丹宁或噻唑烷-2,4-二酮受体单元的对称小分子受体IDT-1和IDT-3进行对比,探讨了分子结构与性能之间的关系。研究发现,从IDT-1到IDT-3,随着两端的绕丹宁基团被噻唑烷-2,4-二酮基团逐步取代,这类小分子受体的吸收光谱显著蓝移,光学带隙E_g~(opt)逐步增大,LUMO和HOMO能级也逐渐抬升。随后我们分别以这三个小分子为受体、P3HT为给体共混构建活性层而制备了有机太阳能电池,结果表明,以两端均为绕丹宁单元的对称结构小分子受体IDT-1构建的电池器件具有最高的光电转换效率(PCE),相应的J_(sc)和FF值也最大,而V_(oc)则最低;而以两端均为噻唑烷-2,4-二酮基团的对称结构小分子受体IDT-3的电池器件,其V_(oc)最高,但其J_(sc)和FF则最低,PCE值也最小。对于IDT-2而言,由于分子只有一个绕丹宁单元被噻唑烷-2,4-二酮所取代,其V_(oc),J_(sc)和PCE均介于IDT-1与IDT-3之间。由此说明,尽管噻唑烷-2,4-二酮基团的引入能有效提升器件V_(oc),但却不利于改善其J_(sc)和FF,因此受体的分子设计中如何平衡电池器件的几种光伏性能参数而获得高的光电转换效率仍是十分重要的研究课题之一。  相似文献   

9.
<正>相对于富勒烯类电子受体,新型非富勒烯受体具有吸光能力强,能级和结构可调等优点,对于提升有机太阳电池光电转换效率具有重要意义。近年,基于稠环结构的电子受体(FREAs)受到了国内外研究者们最多的关注~(1,2)。这一类分子具有良好的骨架平面性,高度离域的电子结构和强聚集倾向的末端基团有利于分子间的π–π堆积和电荷  相似文献   

10.
非富勒烯小分子受体(SMAs)有序聚集决定聚合物/非富勒烯共混体系光伏电池的双分子复合几率。 然而,由于非对称相分离聚合物趋于优先形成网络,抑制小分子受体分子结晶。 在聚[(2,6-(4,8-二(5-(2-乙基己基噻吩-2-基)苯并[1,2-b:4,5-b']二噻吩))-alt-(5,5-(1',3'-二-2-噻吩基-5',7'-二(2-乙基己基)苯并[1',2'-c:4',5'-c']二噻吩-4,8-二酮))](PBDB-T)/9-二(2-亚甲基(3-(1,1-二氰基亚甲基)-6,7-二氟-茚酮))-5,5,11,11-四(4-己基苯基)-二噻吩并[2,3-d:2',3'-d']-s-引达省[1,2-b:5,6-b']二噻吩(IT-4F)共混体系,四氢呋喃蒸汽处理可提高IT-4F结晶性,150 ℃热退火可提高PBDB-T的结晶性。 因此,依次利用蒸汽退火和热退火处理薄膜,诱导小分子先结晶、聚合物后结晶,从而降低PBDB-T对小分子扩散的限制,构建高结晶互穿网络结构。 形貌优化后降低了双分子复合,器件光电转换效率从5.95%提高至7.18%。  相似文献   

11.
With the development of non-fullerene small-molecule acceptors, non-fullerene polymer solar cells (PSCs) have garnered increased attention due to their high performance. While photons are absorbed and converted to free charge carriers in the active layer, the donor and acceptor materials both play a critical role in determining the performance of PSCs. Among the various conjugated-polymer donor materials, polythiophene (PT) derivatives such as poly(3-hexylthiophene), have attracted considerable interest due to their high hole mobility and simple synthesis. However, there are limited studies on the applications of PT derivatives in non-fullerene PSCs. Fabrication of highly efficient non-fullerene PSCs utilizing PT derivatives as the donor is a challenging topic. In this study, a new PT derivative, poly[5, 5′-4, 4′-bis(2-butyloctylsulphanyl)-2, 2′-bithiophene-alt-5, 5′-4, 4′-difluoro-2, 2′-bithiophene] (PBSBT-2F), with alkylthio groups and fluorination was synthesized for use as the donor in non-fullerene PSC applications. The absorption spectra, electrochemical properties, molecular packing, and photovoltaic properties of PBSBT-2F were investigated and compared with those of poly(3-hexylthiophene) (P3HT). The polymer exhibited a wide bandgap of 1.82 eV, a deep highest occupied molecular orbital (HOMO) of -5.02 eV, and an ordered molecular packing structure. Following this observation, PSCs based on a blend of PBSBT-2F as the donor and 3, 9-bis(2-methylene-(3-(1, 1-dicyanomethylene)-indanone)-5, 5, 11, 11-tetrakis(4-hexylphenyl)-dithieno-[2, 3-d:2′, 3′-d′]-s-indaceno[1, 2-b:5, 6-b′]dithiophene (ITIC) as the acceptor were fabricated. The absorption spectra were collected and the energy levels were found to be well matched. These devices exhibited a power conversion efficiency (PCE) of 6.7% with an open-circuit voltage (VOC) of 0.75 V, a short-circuit current density (JSC) of 13.5 mA·cm-2, and a fill factor (FF) of 66.6%. These properties were superior to those of P3HT (1.2%) under the optimal conditions. This result indicates that PBSBT-2F is a promising donor material for non-fullerene PSCs.  相似文献   

12.
在本工作中,我们以烷硫基噻吩基取代的苯并二噻吩(BDTT-S)为给体单元、5, 6-二氟取代苯并三唑(FBTz)和噻唑并噻唑(TTz)为弱吸收电子受体单元,设计合成了一系列宽带隙的无规三元共聚物给体材料。通过改变两个受体单元FBTz和TTz在聚合物中的摩尔比,有效调节了聚合物的光学、电化学、分子排列以及电荷传输性能。最终,使用非卤溶剂为加工溶剂,以三元共聚物PSBTZ-60为给体、ITIC为非富勒烯受体的聚合物太阳能电池(PSCs)获得了10.3%的能量转换效率(PCE),其中开路电压为0.91 V,短路电流为18.0 mA·cm−2,填充因子为62.7%;与之相比,在相同的器件制备条件下,基于PSTZ:ITIC的PSCs仅获得8.5%的PCE,基于PSBZ:ITIC的PSCs也仅获得8.1%的PCE。这些结果表明:三元无规共聚能够作为一种简单且实用的策略去设计、合成高性能聚合物光伏材料。  相似文献   

13.
以高度平面共轭的烷基取代三聚茚为中心核, 以噻吩基团桥联, 在末端连接氰基茚酮作为拉电子基团, 设计合成了一类星型受体分子2,2',2″-{[(5,5,10,10,15,15-己基-10,15-二氢-5H-二茚[1,2-a:1',2'-c]芴-2,7,12-三基)三(噻吩-5,2-二基)]三(亚甲基)}三(3-氧杂-2,3-二氢-1H-茚-2,1-二叉)三丙二腈(NFT-C6)和2,2',2″-{[(5,5,10,10,15,15-癸基-10,15-二氢-5H-二茚[1,2-a:1',2'-c]芴-2,7,12-三基)三(噻吩-5,2-二基)]三(亚甲基)}三(3-氧杂-2,3-二氢-1H-茚-2,1-二叉)三丙二腈(NFT-C10). NFT-C6和NFT-C10的最高占据轨道(HOMO)和最低未占轨道(LUMO)分别位于-5.66和-3.75 eV. 其薄膜在400~700 nm范围内具有较大的吸收强度, 最大吸收峰分别位于606和586 nm. 以聚[(2,6-{4,8-二[5-(2-乙基己基)噻吩-2-基]-苯并[1,2-b:4,5-b']二噻吩})-{5,5-(1',3'-二-2-噻吩基-5',7'-二(2-乙基己基)苯并[1',2'-c:4',5'-c']二噻吩-4,8-二酮)}](PBDB-T)为给体材料, 以NFT-C6或NFT-C10为受体材料制备了太阳能电池器件, 器件在300~700 nm之间具有较宽的响应光谱, 其光电转换效率(PCE)分别达到1.09%和5.23%. 原子力显微镜(AFM)结果表明, PBDB-T和NFT-C10共混制备的光伏器件活性层具有合适的相分离尺寸, 有利于激子的有效解离, 而PBDB-T: NFT-C6器件的活性层相分离尺寸过大, 增加了激子复合的几率, 使器件的短路电流、 填充因子和PCE降低. 研究结果表明, 基于三聚茚的星型光伏材料具有一定的应用前景.  相似文献   

14.
Non-fullerene electron acceptors have attracted enormous attention of the research community owing to their advantages of optoelectronic and chemical tunabilities for promoting high-performance polymer solar cells (PSCs). Among them, fused-ring electron acceptors (FREAs) are the most popular ones with the good structural planarity and rigidity, which successfully boost the power conversion efficiencies (PCEs) of PSCs to over 14%. In considering the cost-control of future scale-up applications, it is also worthwhile to explore novel structures that are easy to synthesize and still maintain the advantages of FREAs. In this work, we design and synthesize a new electron acceptor with an unfused backbone, 5, 5'-((2, 5-bis((2-hexyldecyl)oxy)-1, 4-phenylene)bis(thiophene-2-yl))bis(methanylylidene)) bis(3-oxo-2, 3-dihydro-1H-indene-2, 1-diylidene))dimal-ononitrile (ICTP), which contains two thiophenes and one alkoxy benzene as the core and 2-(3-oxo-2, 3-dihydroinden-1-ylidene) malononitrile (IC) as the terminal groups. The synthetic route to ICTP involves only three steps, with high yields. Density functional theory calculations indicate that the non-covalent interactions, O…H and O…S, help reinforce the space conformation between the central core and the terminals. ICTP shows broad and strong absorption in the long-wavelength range between 500 and 760 nm. The highest occupied molecular orbital and lowest unoccupied molecular orbital levels of ICTP were measured to be -5.56 and -3.84 eV by cyclic voltammetry. The suitable absorption and energy levels make ICTP a good acceptor candidate for medium bandgap polymer donors. The best devices based on PBDB-T:ICTP showed a PCE of 4.43%, with an open circuit voltage (VOC) of 0.97 V, a short circuit current density (JSC) of 8.29 mA∙cm-2, and a fill factor (FF) of 0.55, after adding 1% 1, 8-diiodooctane (DIO) as the solvent additive. Atomic force microscopy revealed that DIO could ameliorate the strong aggregation in the blended film and lead to a smoother film surface. The hole and electron mobilities of the optimized device were measured to be 9.64 and 2.03 × 10-5 cm2∙V-1∙s-1, respectively, by the space-charge-limited current method. The relatively low mobilities might be responsible for the moderate PCE. Further studies can be performed to enlarge the conjugation length by including more aromatic rings. This study provides a simple strategy to design non-fullerene acceptors and a valuable reference for the future development of PSCs.  相似文献   

15.
By using photovoltaic technology, ambient solar light can be directly converted to electricity. The photovoltaic technology has been regarded as one of the most important and promising strategies to resolve the worldwide energy and pollution problems. As one type of photovoltaic technology, polymer solar cells have attracted increasing interest due to their advantages of solution processing capability, low-cost, feasibility to be fabricated on flexible substrates etc. Not until a few years ago, the fullerene derivatives had been dominated the organic photovoltaic field as the most promising acceptor materials for polymer solar cells. However, fullerene-based polymer solar cells have a power conversion efficiency bottleneck due to the relatively fixed energy levels as well as the fixed bandgaps of fullerene derivatives. Therefore, researchers started to develop nonfullerene acceptors which can be used as alternatives to replace the traditional fullerene derivatives. Compared to the fullerene derivatives, nonfullerene acceptors offer several advantages such as stronger light absorption, tunable bandgaps and frontier molecular orbital energy levels. For nonfullerene acceptors, a ladder-type fused ring is usually used as the central core which is an essential building block to tailor the bandgaps and energy levels. Although many fused ring systems have been explored for efficient nonfullerene acceptors, ladder-type angular-shape dithienonaphthalene is seldom reported as the donor unit for nonfullerene acceptors. Furthermore, the impact of thiophene bridge on the optical and photovoltaic properties of the dithienonaphthalene-based nonfullerene acceptors has never been reported. In this context, we report on the design and synthesis of a dithienonaphthalene-based small-molecule acceptor which contains thiophene bridges in between the acceptor terminals and the fused-ring donor core. Compared to the dithienonaphthalene-based small-molecule without the thiophene bridges, the resulting acceptor (DTNIT) exhibits a reduced bandgap of 1.52 eV which makes it more suitable to be blended with the benchmark large bandgap copolymer, poly[(2, 6-(4, 8-bis(5-(2-ethylhexyl)thiophen-2-yl)-benzo[1, 2-b: 4, 5-b']dithiophene))-alt-(5, 5-(1', 3'-di-2-thienyl-5', 7'-bis(2-ethylhexyl)benzo[1', 2'-c:4', 5'-c']dithiophene-4, 8-dione)] (PBDB-T). The reduced band-gap of the resulting nonfullerene acceptor can be attributed to its extended π-conjugation in comparison with the dithienonaphthalene-based acceptor without the thiophene bridges. Inverted polymer solar cells with a device configuration of indium tin oxide/ZnO/PBDB-T:DTNIT/MoO3/Ag were fabricated and characterized. Polymer solar cells based on PBDB-T:DTNIT showed an open circuit voltage of 0.91 V, an enhanced short circuit current of 14.42 mA∙cm−2, and a moderate PCE of 7.05% which is comparable to the PCE of 7.12% for the inverted device based on PBDB-T:PC71BM. Our results not only provide a method to synthesize efficient nonfullerene acceptors with reduced bandgaps, but also offer a bandgap modulation strategy for nonfullerene acceptors.  相似文献   

16.
聚3-己基噻吩(P3HT)以其合成工艺简单、成本低廉的优势,成为有机光伏领域中最具吸引力的电子给体材料之一。然而,目前P3HT: 非富勒烯太阳能电池的光伏性能仍然较差。在本工作中,我们证明了与P3HT: 富勒烯太阳能电池相比,较快的电荷转移态的非辐射衰减速率(Knr)是导致P3HT: 非富勒烯太阳能电池中较低的量子效率和较高的电压损失的原因。然后,我们研究了基于非富勒烯受体ZY-4Cl的太阳能电池的工作机理。研究结果表明与P3HT: 非富勒烯体系相比,P3HT: ZY-4Cl中Knr的降低改善了器件的量子效率,同时降低了电压损失。Knr降低的原因可以部分归因于电荷转移态能量的增加。此外,给体分子和受体分子之间的距离(DA间距)的增大也是Knr减少的重要原因。因此,我们得出结论:为了提高P3HT太阳能电池的性能,需进一步降低器件的Knr,这可通过增加活性层中的DA间距来实现。  相似文献   

17.
The solar cell surface morphologies with different additives observed with slightly changed in roughness. It is easily to get the best PCE of 11.1% with using 0.5% DIO additives.  相似文献   

18.
Recent advances in non-fullerene acceptors(NFAs),typically Y6,have driven power conversion efficiency(PCE) of single-junction orga nic solar cells(OSCs) over 16%.Mea nwhile,it becomes essential to know how to adopt simple strategies to further improve device performance.In this work,a new A-DA'D-A acceptor derivative,Y19-N3 employing 3-ethylheptyl branched at the 3rd-position instead of 2-ethylhexyl on the pyrroles of Y19 is reported.The selection of an appropriate solvent in casting device is implemented to maximize the photovoltaic performance.PBDB-T:Y19-N3-based OSCs treated with a ternary solvent of CF/CB(1:3,v/v) and 0.8% DIO exhibit the optimal PCE of 13.77% here,with the significantly improved Voc(0.78 V) and FF(0.72) as well as the high Jsc(24.46 mA/cm2).Further characterizations indicate that this ternary solvent-treated PBDB-T/Y19-N3 film exhibits the more appropriate morphological features with the highly efficient charge generation and collection as well as the more balanced electron and hole mobilities.This work combines molecular design and device engineering to improve the photovoltaic properties,which is important to the development of OSCs.  相似文献   

19.
聚合物-表面活性剂复合物在诸多工业领域都具有重要的应用潜力,但利用CO_2气体调节复合物的相互作用及微观聚集体形貌鲜见报道。本文基于三嵌段共聚物普兰尼克F127制备了五嵌段共聚物聚甲基丙烯酸二乙氨基乙酯-block-聚氧化乙烯-block-聚氧化丙烯-block-聚氧化乙烯-block-聚甲基丙烯酸二乙氨基乙酯(PDEAEAM-b-F127-b-PDEAEMA)。通过聚合物溶液pH和电导率的变化研究了PDEAEAM-b-F127-b-PDEAEMA的CO_2刺激响应性,应用动态光散射和透射电子显微镜考察了PDEAEAM-b-F127-b-PDEAEMA与阴离子氟碳表面活性剂在CO_2刺激作用下的相互作用。结果表明,CO_2/N_2的交替通入可以使PDEAEAM-b-F127-b-PDEAEMA产生相应的质子化/去质子化过程,从而可逆地改变PDEAEAM-b-F127-b-PDEAEMA溶液的pH值和电导率;质子化/去质子化过程可以"开关"共聚物与阴离子氟碳表面活性剂之间的静电吸引作用,使体系中的聚集体在球形胶束与蠕虫状胶束之间发生可逆转变。CO_2可控的聚合物-表面活性剂复合物的形貌转变为构建气体响应的软材料提供了一种新的思路。  相似文献   

20.
张小梅  李淼淼  王琪  江宇  耿延候 《应用化学》2019,36(9):1023-1034
以不同烷基取代的二噻吩并吡咯(DTP)为π桥,连接吲哒省并二噻吩(IDT)中间单元和氰基茚酮(IC)或二氟代氰基茚酮(2F-IC)末端基团,设计并合成了6个窄带隙的非富勒烯受体材料。 其中,IDTDTP-C2C2-H和IDTDTP-C2C2-F中的DTP单元以1-乙基丙基为侧链,IDTDTP-C6C6-H和IDTDTP-C6C6-F中的DTP单元以1-己基庚基为侧链,IDTDTP-C12-H和IDTDTP-C12-F中的DTP单元以十二烷基为侧链。 6个分子均具有较窄的光学带隙(1.37~1.44 eV)。 相比于以IC为末端基团的分子(IDTDTP-C2C2-H、IDTDTP-C6C6-H和IDTDTP-C12-H),由于氟原子的拉电子效应,以2F-IC为末端基团的分子(IDTDTP-C2C2-F、IDTDTP-C6C6-F和IDTDTP-C12-F)具有红移的吸收光谱,以及更低的最高分子占有轨道能级(HOMO)和最低分子空轨道(LUMO)能级。 以宽带隙聚合物聚[2,6-(4,8-双(5-(2-乙基己基))噻吩-2-基)-苯并[1,2-b:4,5-b']二噻吩-alt-5,5-(1',3'-二-2-噻吩)-5',7'-双(2-乙基己基)-苯并[1',2'-c:4',5'-c']二噻吩-4,8-二酮](PBDB-T)为给体材料,制备了有机太阳能电池器件。 PBDB-T:IDTDTP-C6C6-F共混薄膜具有较高且更平衡的空穴/电子迁移率,以及良好的形貌,基于PBDB-T:IDTDTP-C6C6-F的有机太阳能电池获得了6.94%的能量转换效率,开路电压为0.86 V,短路电流密度为13.56 mA/cm2,填充因子为59.5%。  相似文献   

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