Yang Ruoning, Chen Jiefu, Li Xiang, Zhang Yaxin, Ding Baofu, Xu Yujiangsheng, Luo Shaoqiang, Ma Shaohua, Ren Xingang, Liu Gang, Qiu Ling, Cheng Hui-Ming
Shenzhen Geim Graphene Center (SGC), Tsinghua Shenzhen International Graduate School (SIGS), Tsinghua University, Shenzhen, 518055, People's Republic of China.
Shenzhen Key Lab of Energy Materials for Carbon Neutrality, Shenzhen Institute of Advanced Technology, Chinese Academy of Sciences, 1068 Xueyuan Road, Shenzhen, 518055, People's Republic of China.
Nanomicro Lett. 2025 Jun 17;17(1):300. doi: 10.1007/s40820-025-01805-1.
Titanium dioxide (TiO) has been an important protective ingredient in mineral-based sunscreens since the 1990s. However, traditional TiO nanoparticle formulations have seen little improvement over the past decades and continue to face persistent challenges related to light transmission, biosafety, and visual appearance. Here, we report the discovery of two-dimensional (2D) TiO, characterized by a micro-sized lateral dimension (~1.6 μm) and atomic-scale thickness, which fundamentally resolves these long-standing issues. The 2D structure enables exceptional light management, achieving 80% visible light transparency-rendering it nearly invisible on the skin-while maintaining UV-blocking performance comparable to unmodified rutile TiO nanoparticles. Its larger lateral size results in a two-orders-of-magnitude reduction in skin penetration (0.96 w/w%), significantly enhancing biosafety. Moreover, the unique layered architecture inherently suppresses the generation of reactive oxygen species (ROS) under sunlight exposure, reducing the ROS generation rate by 50-fold compared to traditional TiO nanoparticles. Through precise metal element modulation, we further developed the first customizable sunscreen material capable of tuning UV protection ranges and automatically matching diverse skin tones. The 2D TiO offers a potentially transformative approach to modern sunscreen formulation, combining superior UV protection, enhanced safety and a natural appearance.
自20世纪90年代以来,二氧化钛(TiO₂)一直是矿物基防晒霜中的重要防护成分。然而,在过去几十年里,传统的TiO₂纳米颗粒配方几乎没有改进,并且在光透射、生物安全性和外观方面仍然面临持续挑战。在此,我们报告了二维(2D)TiO₂的发现,其特征在于微米级的横向尺寸(约1.6μm)和原子级厚度,从根本上解决了这些长期存在的问题。这种二维结构实现了卓越的光管理,可见光透明度达到80%,使其在皮肤上几乎不可见,同时保持与未改性的金红石TiO₂纳米颗粒相当的紫外线阻挡性能。其较大的横向尺寸使皮肤渗透率降低了两个数量级(0.96 w/w%),显著提高了生物安全性。此外,独特的层状结构在阳光照射下固有地抑制了活性氧(ROS)的产生,与传统TiO₂纳米颗粒相比,ROS产生速率降低了50倍。通过精确的金属元素调制,我们进一步开发了第一种可定制的防晒材料,能够调节紫外线防护范围并自动匹配不同的肤色。二维TiO₂为现代防晒霜配方提供了一种潜在的变革性方法,兼具卓越的紫外线防护、更高的安全性和自然的外观。