Universidad de Castilla-La Mancha, Instituto de Nanociencia, Nanotecnología y Materiales Moleculares (INAMOL), 45071-Toledo, Spain.
Nanoscale. 2018 Mar 15;10(11):5205-5213. doi: 10.1039/c8nr00262b.
Enriched semiconducting single-walled carbon nanotubes (SWCNT (6,5) and SWCNT (7,6)) and HiPco nanotubes were covalently functionalized with either zinc phthalocyanine or silicon phthalocyanine as electron donors. The synthetic strategy resulted in edge-on and face-on geometries with respect to the phthalocyanine geometry, with both phthalocyanines held by an electronically conducting diphenylacetylene linker. The extent of functionalization in the MPc-SWCNT (M = Zn or Si) donor-acceptor nanohybrids was determined by systematic studies involving AFM, TGA, XPS, optical and Raman techniques. Intramolecular interactions in MPc-SWCNT nanohybrids were probed by studies involving optical absorbance, Raman, luminescence and electrochemical studies. Different degrees of interactions were observed depending on the type of MPc and mode of attachment. Substantial quenching of MPc fluorescence in these hybrids was observed from steady-state and three-dimensional fluorescence mapping, which suggests the occurrence of excited state events. Evidence for the occurrence of excited state charge transfer type interactions was subsequently secured from femtosecond transient absorption studies covering both the visible and near-infrared regions. Furthermore, electron-pooling experiments performed in the presence of a sacrificial electron donor and a second electron acceptor revealed accumulation of one-electron reduced product upon continuous irradiation of the nanohybrids. In such experiments, the ZnPc-SWCNT (6,5) nanohybrid outperformed other nanohybrids and this suggests that this is a superior donor-acceptor system for photocatalytic applications.
富勒烯半导体单壁碳纳米管 (SWCNT (6,5) 和 SWCNT (7,6)) 和 HiPco 纳米管通过锌酞菁或硅酞菁共价功能化作为电子给体。该合成策略导致酞菁几何形状的边缘和面对几何形状,两种酞菁都由电子导电二苯乙炔连接体固定。MPc-SWCNT(M = Zn 或 Si)给体-受体纳米杂化物的功能化程度通过涉及 AFM、TGA、XPS、光学和拉曼技术的系统研究来确定。通过涉及光学吸收、拉曼、发光和电化学研究的研究来探测 MPc-SWCNT 纳米杂化物中的分子内相互作用。根据 MPc 的类型和附着方式观察到不同程度的相互作用。在这些杂化物中观察到 MPc 荧光的显著猝灭来自稳态和三维荧光映射,这表明发生了激发态事件。随后从覆盖可见和近红外区域的飞秒瞬态吸收研究中获得了发生激发态电荷转移型相互作用的证据。此外,在存在牺牲电子供体和第二个电子受体的情况下进行的电子收集实验表明,在连续辐照纳米杂化物时会积累单电子还原产物。在这些实验中,ZnPc-SWCNT (6,5) 纳米杂化物的性能优于其他纳米杂化物,这表明这是一种用于光催化应用的优异给体-受体体系。