Li Chao, Jiao Fuhang, Dong Lin, Hu Junhua, Ma Xuejun, Lou Qing, Chen Xu, Xu Wen, Zhu Yongsheng, Zhu Jinyang
Zhongyuan Critical Metals Laboratory, Zhengzhou University, Zhengzhou, 450001, P. R. China.
College of Physics and Electronic Engineering, Nanyang Normal University, Nanyang, 473061, P. R. China.
Adv Mater. 2025 Jul;37(26):e2502522. doi: 10.1002/adma.202502522. Epub 2025 Apr 13.
Phosphorescent materials offer a promising approach to information encryption due to their long luminescence lifetimes and high signal-to-noise ratios. However, fixed phosphorescent patterns are vulnerable to imitation over time, limiting their effectiveness in advanced encryption. Here, a time-division multiplexing physical unclonable function (TDM-PUF) label utilizing multicolor phosphorescent carbon dots (CDs) is proposed that leverages variations in wavelength and lifetime to construct time-resolved, multidimensional cryptographic protocols. Efficient multi-color phosphorescence in CDs is achieved by enhancing intersystem crossing, suppressing non-radiative transitions through confinement effects, and regulating emission spectra via energy transfer. The random spatial distribution and unpredictable emissions of phosphorescent CDs significantly enhance the complexity of the PUF system, thereby fortifying its defenses against mimicry attacks. Furthermore, this PUF system exhibits multiple optical responses over time, allowing correct information recognition only at specified time nodes, achieving time-resolved anti-counterfeiting. Finally, by segmenting PUF labels based on emission color and time channels, non-overlapping multicolor and multi-time segments are achieved, enabling highly secure time-division multiplexed encryption. The study provides a competitive anti-counterfeiting label and inspires the development of novel anti-counterfeiting strategies.
由于磷光材料具有较长的发光寿命和较高的信噪比,因此为信息加密提供了一种很有前景的方法。然而,固定的磷光图案随着时间的推移容易被模仿,这限制了它们在高级加密中的有效性。在此,提出了一种利用多色磷光碳点(CDs)的时分复用物理不可克隆函数(TDM-PUF)标签,该标签利用波长和寿命的变化来构建时间分辨的多维加密协议。通过增强系间窜越、通过限制效应抑制非辐射跃迁以及通过能量转移调节发射光谱,实现了CDs中的高效多色磷光。磷光CDs的随机空间分布和不可预测的发射显著提高了PUF系统的复杂性,从而加强了其对模仿攻击的防御能力。此外,该PUF系统随时间呈现多种光学响应,仅在指定的时间节点允许正确的信息识别,实现了时间分辨防伪。最后,通过基于发射颜色和时间通道对PUF标签进行分割,实现了不重叠的多色和多时间段,从而实现了高度安全的时分复用加密。该研究提供了一种具有竞争力的防伪标签,并激发了新型防伪策略的发展。