Chen Yibo, Zuo Zhi-Han, Liu Zhao-Qing, Yin Yadong
School of Chemistry and Chemical Engineering/Guangzhou Key Laboratory for Clean Energy and Materials, Guangzhou University, Guangzhou, 510006, P. R. China.
Department of Chemistry, University of California, Riverside, CA, 92521, USA.
Small. 2022 Dec;18(49):e2204484. doi: 10.1002/smll.202204484. Epub 2022 Oct 30.
Drop-casting manganese oxide (MnO ) hollow nanospheres synthesized via a simple surface-initiated redox route produces thin films exhibiting angle-independent structural colors. The colors can rapidly change in response to high-humidity dynamic water vapor (relative humidity > 90%) with excellent reversibility. When the film is triggered by dynamic water vapor with a relative humidity of ≈100%, the color changes with an optimal wavelength redshift of ≈60 nm at ≈600 ms while there is no shift under static water vapor. The unique selective response originates from the nanoscale porosity formed in the shells by randomly stacked MnO nanosheets, which enhances the capillary condensation of dynamic water vapor and promotes the change of their effective refractive index for rapid color switching. The repeated color-switching tests over 100 times confirm the durability and reversibility of the MnO film. The potential of these films for applications in anti-counterfeiting and information encryption is further demonstrated by reversible encoding and decoding initiated exclusively by exposure to human breath.
通过简单的表面引发氧化还原路线合成的滴铸氧化锰(MnO)空心纳米球可制备出呈现与角度无关的结构色的薄膜。这些颜色能对高湿度动态水蒸气(相对湿度>90%)做出快速响应,且具有出色的可逆性。当薄膜由相对湿度约为100%的动态水蒸气触发时,颜色会在约600毫秒内以约60纳米的最佳波长红移发生变化,而在静态水蒸气下则无波长偏移。这种独特的选择性响应源于由随机堆叠的MnO纳米片在壳层中形成的纳米级孔隙率,它增强了动态水蒸气的毛细凝聚,并促进其有效折射率的变化以实现快速颜色切换。超过100次的重复颜色切换测试证实了MnO薄膜的耐久性和可逆性。仅通过暴露于人体呼出的气体引发的可逆编码和解码进一步证明了这些薄膜在防伪和信息加密应用中的潜力。