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Spatially Modulating the Fluorescence Color of Mixed-Halide Perovskite Nanoplatelets through Direct Femtosecond Laser Writing

机译:通过直接飞秒激光书写来在空间上调节混合卤化汞纳米岩纳米片的荧光

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Lead halide perovskites are widely applied in not only photovoltaics but also on-chip light sources and photon detection. To promote the incorporation of perovskite into integrated devices, microscale color patterning flexibility is a very important step. Here, we demonstrate spatially resolved modulation of the fluorescence of nanoplatelets (NPs) by femtosecond direct laser writing (fs-DLW). As the perovskite NP for the fs-DLW pattern is specially designed with a gradual bromide-iodide composition along the depth, the replacement of iodide ions by bromide ions can be activated under a controlled laser pulse and fluorescence is thus modulated from red to green. The effect of processing depth and NP thickness on fluorescence modulation is systemically investigated. The as-grown thick NP (thickness P.-, 500 nm) mainly exhibits a 690 nm emission from the bottom iodine-rich phase. After halide substitution induced by fs-DLW, a new fluorescence peak wavelength range of 540-600 nm; the peak position and intensity are controlled by the DLW conditions. The fluorescent color is spatially modulated from red to green, enabling microscale-resolved multicolor emission. Compared with other currently available techniques, microscale color patterning via fs-DLW is a straightforward mask-free one-step operation, yielding high spatial resolution and enabling three-dimensional patterning by the multiple-photon method. We demonstrate that arbitrary patterns can be drawn on a wide range of perovskite NPs, implying the potential applications in microencryption, sensors, multicolor displays, lasers, and light-emitting devices.
机译:铅卤化铅佩罗夫斯基特不仅应用于光伏,而且是片上光源和光子检测。为了促进佩罗夫斯基钛矿进入集成装置,微观彩色图案化灵活性是一个非常重要的一步。在这里,我们证明了通过飞秒直接激光写入(FS-DLW)的纳米孔(NPS)的荧光的空间解决调节。由于FS-DLW图案的钙钛矿NP具有沿着深度的逐渐溴化物 - 碘化物组合物设计,因此可以在受控激光脉冲下替代溴化物离子的碘化物离子,因此从红色到绿色调节荧光。系统研究了处理深度和NP厚度对荧光调制的影响。生长的厚NP(厚度P.-,500nm)主要显示出富含底层碘相的690nm。通过FS-DLW诱导卤化物取代后,新的荧光峰值波长范围为540-600nm;峰值位置和强度由DLW条件控制。荧光颜色从红色到绿色的空间上调制,从而实现微观分辨的多色发射。与其他目前可用的技术相比,通过FS-DLW的微观彩色图案化是一种无直接的掩模一步操作,产生高空间分辨率,并通过多光子方法实现三维图案化。我们证明可以在广泛的钙钛矿NPS上绘制任意模式,这意味着微源性,传感器,多色显示器,激光器和发光器件中的潜在应用。

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