Nanographene oxide-TiO2 photonic films as plasmon-free substrates for surface-enhanced Raman scattering

被引:33
作者
Papadakis, Dimitrios [1 ]
Diamantopoulou, Angeliki [1 ]
Pantazopoulos, Petros Andreas [1 ]
Palles, Dimitrios [2 ]
Sakellis, Elias [3 ]
Boukos, Nikos [3 ]
Stefanou, Nikolaos [1 ]
Likodimos, Vlassis [1 ]
机构
[1] Natl & Kapodistrian Univ Athens, Dept Phys, Sect Solid State Phys, Panepistimiopolis 15784, Greece
[2] Natl Hellen Res Fdn, Theoret & Phys Chem Inst, 48 Vassileos Constantinou Ave, Athens 11635, Greece
[3] Natl Ctr Sci Res Demokritos, Inst Nanosci & Nanotechnol, Athens 15341, Greece
关键词
CHARGE-TRANSFER; GRAPHENE OXIDE; FREE SERS; TIO2; NANOPARTICLES; TITANIUM-DIOXIDE; GRAPHITE OXIDE; SALICYLIC-ACID; ACTIVE-SITES; SPECTROSCOPY; ADSORPTION;
D O I
10.1039/c9nr07680h
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The development of nanostructured semiconductors with tailored morphology and electronic properties for surface-enhanced Raman scattering (SERS) has been attracting significant attention as a promising alternative to conventional coinage metal SERS substrates. In this work, functionalized TiO2 photonic crystals by graphene oxide nanocolloids (nanoGO) are demonstrated as highly sensitive, recyclable, plasmon-free SERS substrates that combine slow-photon amplification effects with the high adsorption capacity and surface reactivity of GO nanosheets. Comparative evaluation of photonic band gap engineered nanoGO-TiO2 inverse opal films was performed on methylene blue SERS detection under different laser excitations in combination with rigorous theoretical simulations of the photonic band structure. A very low detection limit of 6 x 10(-7) M and an enhancement factor of 5 x 10(4) along with excellent self-cleaning performance and reusability could be achieved by the interplay of slow-photon effects assisted by interfacial charge transfer between the analyte and the nanoGO-TiO2 semiconducting substrate. Slow-photon management in combination with judicious engineering of chemical enhancement in photonic nanostructures is accordingly proposed as an advanced approach for the design of efficient dielectric SERS substrates.
引用
收藏
页码:21542 / 21553
页数:12
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