Chattopadhyay Shreyasi, Bysakh Sandip, Mishra Pravat Manjari, De Goutam
CSIR-Central Glass and Ceramic Research Institute , 196, Raja S. C. Mullick Road , Kolkata 700032 , India.
Environment & Sustainability Department , CSIR-Institute of Minerals and Materials Technology , Bhubaneswar 751013 , Odisha , India.
Langmuir. 2019 Nov 5;35(44):14364-14375. doi: 10.1021/acs.langmuir.9b02361. Epub 2019 Oct 21.
We designed an electrospinning synthesis protocol to obtain in situ, the mesoporous TiO nanofibers, which are surface-decorated with plasmonic AuAg nanoparticles (AuAg-mTNF-H). Such alloy nanoparticles are found to be partially exposed on the surface of the nanofibers. Characterization by HRTEM and EDS confirmed the formation of 1:1 AuAg alloy nanoparticles on the surface of TiO nanofibers with heterojunction at the interfaces. On the basis of electron microscopic characterization, we proposed that, during the formation of the nanofibers, the incorporated metal ions with surface capping of negative charges migrated toward the outer surface of the nascent fibers under the influence of high positive voltage required for electrospinning. As a result, after the subsequent thermal treatment, the crystallization of TiO nanofibers and the formation of alloy nanoparticles took place, leading to the formation of a deep heterojunction through partial embedment of the nanoparticles. The formation of AuAg alloy also restricted the oxidation of Ag, thus making the nanoparticles highly stable in ambient condition. Accordingly, such unique AuAg-mTNF-H photocatalyst shows strong light absorption property covering the entire range of visible wavelengths with stability. The solar light harvesting property of AuAg-mTNF-H was verified by monitoring solar light induced H evolution via water splitting and photodecomposition of MB. In both the cases AuAg-mTNF-H showed excellent H evolution and photodecomposition of dye.
我们设计了一种静电纺丝合成方案,以原位获得介孔TiO纳米纤维,其表面用等离子体AuAg纳米颗粒(AuAg-mTNF-H)进行了修饰。发现这种合金纳米颗粒部分暴露在纳米纤维表面。通过高分辨率透射电子显微镜(HRTEM)和能谱仪(EDS)表征证实,在TiO纳米纤维表面形成了1:1的AuAg合金纳米颗粒,且在界面处形成了异质结。基于电子显微镜表征,我们提出,在纳米纤维形成过程中,带有表面负电荷封端的掺入金属离子在静电纺丝所需的高正电压影响下迁移至新生纤维的外表面。因此,经过后续热处理后,TiO纳米纤维结晶并形成合金纳米颗粒,通过纳米颗粒的部分嵌入形成了深度异质结。AuAg合金的形成还限制了Ag的氧化,从而使纳米颗粒在环境条件下具有高度稳定性。相应地,这种独特的AuAg-mTNF-H光催化剂在整个可见波长范围内均表现出强烈的光吸收性能且具有稳定性。通过监测太阳光诱导的水分解产氢和亚甲基蓝(MB)的光分解,验证了AuAg-mTNF-H的太阳光捕获性能。在这两种情况下,AuAg-mTNF-H均表现出优异的产氢和染料光分解性能。