首页> 外文期刊>ACS Omega >Zwitterion Nondetergent Sulfobetaine-Modified SnO2 as an Efficient Electron Transport Layer for Inverted Organic Solar Cells
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Zwitterion Nondetergent Sulfobetaine-Modified SnO2 as an Efficient Electron Transport Layer for Inverted Organic Solar Cells

机译:两性离子非去污剂磺基甜菜碱修饰的SnO2作为有效的电子传输层的反向有机太阳能电池。

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Tin oxide (SnO2) has been widely accepted as an effective electron transport layer (ETL) for optoelectronic devices because of its outstanding electro-optical properties such as its suitable band energy levels, high electron mobility, and high transparency. Here, we report a simple but effective interfacial engineering strategy to achieve highly efficient and stable inverted organic solar cells (iOSCs) via a low-temperature solution process and an SnO2 ETL modified by zwitterion nondetergent sulfobetaine 3-(4-tert-butyl-1-pyridinio)-1-propanesulfonate (NDSB-256-4T). We found that NDSB-256-4T helps reduce the work function of SnO2, resulting in more efficient electron extraction and transport to the cathode of iOSCs. NDSB-256-4T also passivates the defects in SnO2, which serves as recombination centers that greatly reduce the device performance of iOSCs. In addition, NDSB-256-4T provides the better interfacial contact between SnO2 and the active layer. Thus, a higher power conversion efficiency (PCE) and longer device stability of iOSCs are expected for a combination of SnO2 and NDSB-256-4T than for devices based on SnO2 only. With these enhanced interfacial properties, P3HT:PC60BM-based iOSCs using SnO2/NDSB-256-4T (0.2 mg/mL) as an ETL showed both a higher average PCE of 3.72%, which is 33% higher than devices using SnO2 only (2.79%) and excellent device stability (over 90% of the initial PCE remained after storing 5 weeks in ambient air without encapsulation). In an extended application of the PTB7-Th:PC70BM systems, we achieved an impressive average PCE of 8.22% with SnO2/NDSB-256-4T (0.2 mg/mL) as the ETL, while devices based on SnO2 exhibited an average PCE of only 4.45%. Thus, the use of zwitterion to modify SnO2 ETL is a promising way to obtain both highly efficient and stable iOSCs.
机译:氧化锡(SnO2)由于其出色的电光特性(如合适的能带能级,高电子迁移率和高透明性)而被广泛接受为光电器件的有效电子传输层(ETL)。在这里,我们报告了一种简单而有效的界面工程策略,可通过低温溶液工艺和由两性离子非洗涤剂磺基甜菜碱3-(4-叔丁基-1)改性的SnO2 ETL来实现高效且稳定的倒置有机太阳能电池(iOSC) -吡啶基)-1-丙烷磺酸盐(NDSB-256-4T)。我们发现NDSB-256-4T有助于降低SnO2的功函,从而更有效地提取电子并将其传输至iOSCs的阴极。 NDSB-256-4T还钝化了SnO2中的缺陷,而SnO2中的缺陷充当了重组中心,大大降低了iOSC的设备性能。另外,NDSB-256-4T在SnO2和活性层之间提供了更好的界面接触。因此,与仅基于SnO2的设备相比,对于SnO2和NDSB-256-4T的组合,期望有更高的功率转换效率(PCE)和iOSC更长的设备稳定性。通过这些增强的界面特性,使用SnO2 / NDSB-256-4T(0.2 mg / mL)作为ETL的基于P3HT:PC60BM的iOSC的平均PCE均较高,为3.72%,这比仅使用SnO2的设备高33%( 2.79%)和出色的器件稳定性(在未封装的环境空气中保存5周后,仍保留了超过90%的初始PCE)。在PTB7-Th:PC70BM系统的扩展应用中,使用SnO2 / NDSB-256-4T(0.2 mg / mL)作为ETL,我们实现了令人印象深刻的平均PCE为8.22%,而基于SnO2的设备的平均PCE为只有4.45%。因此,使用两性离子修饰SnO2 ETL是获得高效和稳定的iOSC的有前途的方法。

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