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Toluene Processed All-Polymer Solar Cells with 18%Efficiency and Enhanced Stability Enabled by Solid Additive:Comparison Between Sequential-Processing and Blend-Casting 被引量:1
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作者 Guoping Zhang Chaoyue Zhao +13 位作者 liangxiang zhu Lihong Wang Wenzhao Xiong Huawei Hu Qing Bai Yaping Wang Chen Xie Peng You He Yan Dan Wu Tao Yang Mingxia Qiu Shunpu Li Guangye Zhang 《Energy & Environmental Materials》 SCIE EI CAS CSCD 2024年第4期247-254,共8页
The emergence of polymerized small molecule acceptors(PSMAs)has significantly improved the performance of all-polymer solar cells(all-PSCs).However,the pace of device engineering lacks behind that of materials develop... The emergence of polymerized small molecule acceptors(PSMAs)has significantly improved the performance of all-polymer solar cells(all-PSCs).However,the pace of device engineering lacks behind that of materials development,so that a majority of the PSMAs have not fulfilled their potentials.Furthermore,most high-performance all-PSCs rely on the use of chloroform as the processing solvent.For instance,the recent highperformance PSMA,named PJ1-γ,with high LUMO,and HOMO levels,could only achieve a PCE of 16.1%with a high-energy-level donor(JD40)using chloroform.Herein,we present a methodology combining sequential processing(SqP)with the addition of 0.5%wt PC_(71)BM as a solid additive(SA)to achieve an impressive efficiency of 18.0%for all-PSCs processed from toluene,an aromatic hydrocarbon solvent.Compared to the conventional blend-casting(BC)method whose best efficiency(16.7%)could only be achieved using chloroform,the SqP method significantly boosted the device efficiency using toluene as the processing solvent.In addition,the donor we employ is the classic PM6 that has deeper energy levels than JD40,which provides low energy loss for the device.We compare the results with another PSMA(PYF-T-o)with the same method.Finally,an improved photostability of the SqP devices with the incorporation of SA is demonstrated. 展开更多
关键词 all-polymers solar cells sequential processing solid additive
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高内相乳液模板法制备P(BMA-co-MMA)多孔树脂及其吸油性能 被引量:1
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作者 朱媛媛 朱亮翔 +4 位作者 吴明元 吴庆云 杨建军 刘久逸 张建安 《高分子材料科学与工程》 EI CAS CSCD 北大核心 2022年第2期32-38,共7页
采用高内相乳液模板法,以甲基丙烯酸丁酯(BMA)和甲基丙烯酸甲酯(MMA)为单体、二乙烯苯(DVB)为交联剂、失水山梨醇油酸酯(Span 80)为乳化剂、偶氮二异庚腈(AVBN)为引发剂,合成了可压缩、高弹性的P(BMA-co-MMA)多孔吸油树脂。采用红外光... 采用高内相乳液模板法,以甲基丙烯酸丁酯(BMA)和甲基丙烯酸甲酯(MMA)为单体、二乙烯苯(DVB)为交联剂、失水山梨醇油酸酯(Span 80)为乳化剂、偶氮二异庚腈(AVBN)为引发剂,合成了可压缩、高弹性的P(BMA-co-MMA)多孔吸油树脂。采用红外光谱和扫描电镜对多孔树脂的结构进行表征,并测试了多孔树脂的力学性能,考察了单体配比和表面活性剂用量对树脂吸油性能的影响,评价了其油水分离性能。结果表明,以m(BMA):m(MMA)=7:3,Span 80用量占单体总质量的16.67%制备的P(BMA-co-MMA)多孔树脂的吸油性能最佳,对二氯甲烷的吸附量高达51.95 g/g,保油率可达93%以上。此外,该多孔树脂具有良好的超亲油疏水性,水接触角(WCA)可达到143°,油接触角接近0°,能够在20 s内完全吸附水中的甲苯,有望在油水分离方面得到应用。 展开更多
关键词 高内相乳液模板法 多孔吸油树脂 疏水亲油性 油水分离
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Phase separation and domain crystallinity control enable open-air-printable highly efficient and sustainable organic photovoltaics
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作者 Jie Lv Xiaokang Sun +9 位作者 Hua Tang Fei Wang Guangye Zhang liangxiang zhu Jiaming Huang Qianguang Yang Shirong Lu Gang Li Frédéric Laquai Hanlin Hu 《InfoMat》 SCIE CSCD 2024年第3期131-143,共13页
Organic solar cells(OSCs)have emerged as a promising solution for sustainable energy production,offering advantages such as a low carbon footprint,short energy payback period,and compatibility with eco-solvents.Howeve... Organic solar cells(OSCs)have emerged as a promising solution for sustainable energy production,offering advantages such as a low carbon footprint,short energy payback period,and compatibility with eco-solvents.However,the use of hazardous solvents continues to dominate the best-performing OSCs,mainly because of the challenges of controlling phase separation and domain crystallinity in eco-solvents.In this study,we combined the solvent vapor treatment of CS2 and thermal annealing to precisely control the phase separation and domain crystallinity in PM6:M-Cl and PM6:O-Cl systems processed with the eco-solvent o-xylene.This method resulted in a maximum power conversion efficiency(PCE)of 18.4%,which is among the highest values reported for sustainable binary OSCs.Furthermore,the fabrication techniques were transferred from spin coating in a nitrogen environment to blade printing in ambient air,retaining a PCE of 16.0%,showing its potential for high-throughput and scalable production.In addition,a comparative analysis of OSCs processed with hazardous and green solvents was conducted to reveal the differences in phase aggregation.This work not only underscores the significance of sustainability in OSCs but also lays the groundwork for unlocking the full potential of open-air-printable sustainable OSCs for commercialization. 展开更多
关键词 open-air printable organic solar cells SUSTAINABILITY
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