Continuous-Wave Pumped Monolayer WS2 Lasing for Photonic Barcoding

Nanomaterials Pub Date : 2024-03-30 DOI:10.3390/nano14070614
Haodong Cheng, Junyu Qu, Wangqi Mao, Shula Chen, Hongxing Dong
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Abstract

Micro/nano photonic barcoding has emerged as a promising technology for information security and anti-counterfeiting applications owing to its high security and robust tamper resistance. However, the practical application of conventional micro/nano photonic barcodes is constrained by limitations in encoding capacity and identification verification (e.g., broad emission bandwidth and the expense of pulsed lasers). Herein, we propose high-capacity photonic barcode labels by leveraging continuous-wave (CW) pumped monolayer tungsten disulfide (WS2) lasing. Large-area, high-quality monolayer WS2 films were grown via a vapor deposition method and coupled with external cavities to construct optically pumped microlasers, thus achieving an excellent CW-pumped lasing with a narrow linewidth (~0.39 nm) and a low threshold (~400 W cm−2) at room temperature. Each pixel within the photonic barcode labels consists of closely packed WS2 microlasers of varying sizes, demonstrating high-density and nonuniform multiple-mode lasing signals that facilitate barcode encoding. Notably, CW operation and narrow-linewidth lasing emission could significantly simplify detection. As proof of concept, a 20-pixel label exhibits a high encoding capacity (2.35 × 10108). This work may promote the advancement of two-dimensional materials micro/nanolasers and offer a promising platform for information encoding and security applications.
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用于光子条形码的连续波泵送单层 WS2 激光技术
微/纳米光子条形码因其高度安全性和强大的防篡改能力,已成为信息安全和防伪应用领域一项前景广阔的技术。然而,传统微米/纳米光子条形码的实际应用受到编码容量和识别验证的限制(如宽发射带宽和脉冲激光器的费用)。在此,我们利用连续波(CW)泵浦单层二硫化钨(WS2)激光,提出了高容量光子条形码标签。我们采用气相沉积法生长了大面积、高质量的单层 WS2 薄膜,并将其与外部空腔耦合以构建光泵浦微激光器,从而在室温下实现了线宽较窄(约 0.39 nm)、阈值较低(约 400 W cm-2)的出色连续波泵浦激光。光子条形码标签中的每个像素都由紧密排列的不同尺寸的 WS2 微激光器组成,显示出高密度和不均匀的多模式激光信号,从而促进了条形码编码。值得注意的是,CW 操作和窄线宽激光发射可大大简化检测工作。作为概念验证,一个 20 像素的标签显示出很高的编码能力(2.35 × 10108)。这项工作可能会促进二维材料微型/纳米激光器的发展,并为信息编码和安全应用提供一个前景广阔的平台。
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