Kim So-Yeon, Yang June-Mo, Choi Eun-Suk, Park Nam-Gyu
School of Chemical Engineering, Sungkyunkwan University, Suwon 16419, Korea.
Nanoscale. 2019 Aug 1;11(30):14330-14338. doi: 10.1039/c9nr00438f.
We report here the effect of interlayer spacing in 2-dimensional (2D) perovskites of [C6H5(CH2)nNH3]2PbI4 (anilinium (An) for n = 0, benzylammonium (BzA) for n = 1 and phenylethylammonium (PEA) for n = 2) on resistive switching properties. X-ray diffraction (XRD) reveals that the interlayer spacing of layered PbI2 is increased from 6.98 Å to 13.29 Å for (An)2PbI4, 14.20 Å for (BzA)2PbI4 and 15.92 Å for (PEA)2PbI4, which leads to a monolayer of organic cations with stacked benzene rings between inorganic PbI42- layers. All the samples in the device structure of Ag/PMMA (polymethyl methacrylate)/perovskite/Pt show bipolar switching behavior, where the SET voltage is near +0.2 V and the RESET voltage is less than -0.5 V. The ratio of LRS (low resistance state) to HRS (high resistance state), also called the ON/OFF ratio, is increased from 106 to 108 as interlayer spacing is increased due to the gradual increase in resistance in the HRS. Endurance is slightly improved from 1.3 × 102 for An to 2.2 × 102 for PEA, whereas substantial improvement in retention is observed from 2 × 103 to 5.5 × 103. This indicates that the enhanced 2D structure is beneficial to the kinetics of forming and rupturing the conducting filaments. The ohmic-like conduction mechanism in the LRS and the hopping mechanism in the HRS are observed for all three samples. This work finds that the resistive switching properties and conduction mechanism in the HRS depend on interlayer spacing in 2D perovskites.
我们在此报告二维(2D)钙钛矿[C6H5(CH2)nNH3]2PbI4(n = 0时为苯胺鎓(An),n = 1时为苄基铵(BzA),n = 2时为苯乙铵(PEA))中间层间距对电阻开关特性的影响。X射线衍射(XRD)表明,层状PbI2的层间距对于(An)2PbI4从6.98 Å增加到13.29 Å,对于(BzA)2PbI4为14.20 Å,对于(PEA)2PbI4为15.92 Å,这导致在无机PbI42-层之间形成具有堆叠苯环的有机阳离子单层。Ag/聚甲基丙烯酸甲酯(PMMA)/钙钛矿/Pt器件结构中的所有样品均表现出双极开关行为,其中SET电压接近+0.2 V,RESET电压小于 -0.5 V。低电阻状态(LRS)与高电阻状态(HRS)的比率,也称为开/关比,随着层间距的增加从106增加到108,这是由于HRS中的电阻逐渐增加。耐久性从An的1.3×102略有提高到PEA的2.2×102,而保持率则从2×103大幅提高到5.5×103。这表明增强的二维结构有利于导电细丝形成和断裂的动力学。对于所有三个样品,在LRS中观察到类欧姆传导机制,在HRS中观察到跳跃机制。这项工作发现,HRS中的电阻开关特性和传导机制取决于二维钙钛矿中的层间距。