Light-harvesting multi-walled carbon nanotubes and CdS hybrids: Application to photocatalytic hydrogen production from water

被引:251
作者
Kim, Young Kwang [1 ]
Park, Hyunwoong [1 ,2 ]
机构
[1] Kyungpook Natl Univ, Dept Phys, Taegu 702701, South Korea
[2] Kyungpook Natl Univ, Sch Phys & Energy Sci, Taegu 702701, South Korea
基金
新加坡国家研究基金会;
关键词
PHOTOELECTROCHEMICAL SOLAR-CELLS; HIGH-RESOLUTION XPS; RAMAN-SPECTROSCOPY; FUNCTIONAL-GROUPS; WORK FUNCTION; OXIDATION; CO2; NANOPARTICLES; PURIFICATION; SUSPENSIONS;
D O I
10.1039/c0ee00330a
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
This study reports the synthesis and surface characterization of multi-walled carbon nanotubes (CNT), CdS, and metal catalyst (M) hybrids (CdS/CNT/M), and their novel application to photocatalytic hydrogen production under visible light (lambda > 400 nm) in the presence of electron donor (Na(2)S and Na(2)SO(3)). In the binary hybrids between CNT and CdS (CdS/CNT) the CNT annealed at 500 degrees C (h-CNT) has the larger amount of hydrogen production than crude (c-CNT) or acid-treated CNT (a-CNT) due to highly improved purity and suitable work function. When hybridized with CdS and M, however, a-CNT has the largest amount of hydrogen production (a-CNT > h-CNT > c-CNT) even though all the CNTs have similar functional groups for binding metal catalyst on their surfaces. Photocurrent measurements also indicated that CdS/a-CNT/Pt ternary generates a higher photocurrent than that of CdS/a-CNT binary (ternary > binary > CdS alone). In such ternary hybrids, Pt, Ni, and Ru are found to be effective in catalyzing proton/water but other metals (Pd, Au, Ag, Cu) showed very low activities with the following order: Pt > Ni > Ru > Pd > Au > Ag > Cu. The enhanced hydrogen production in the binary and ternary hybrids is ascribed partially to suitably positioned work functions among the hybrid components and thereby vectorial charge transfer through the work function energy gradient. Detailed surface studies were also described using Raman spectroscopy, Fourier transform infrared spectroscopy (FTIR), X-ray diffraction (XRD), X-ray photoelectroscopy (XPS), scanning electron microscopy (SEM), and transmission electron microscopy (TEM).
引用
收藏
页码:685 / 694
页数:10
相关论文
共 45 条
  • [1] Work functions and surface functional groups of multiwall carbon nanotubes[J]. Ago, H;Kugler, T;Cacialli, F;Salaneck, WR;Shaffer, MSP;Windle, AH;Friend, RH. JOURNAL OF PHYSICAL CHEMISTRY B, 1999(38)
  • [2] Purification and structural annealing of multiwalled carbon nanotubes at graphitization temperatures[J]. Andrews, R;Jacques, D;Qian, D;Dickey, EC. CARBON, 2001(11)
  • [3] Single-wall carbon nanotube films for photocurrent generation. A prompt response to visible-light irradiation[J]. Barazzouk, S;Hotchandani, S;Vinodgopal, K;Kamat, PV. JOURNAL OF PHYSICAL CHEMISTRY B, 2004(44)
  • [4] Tuning the work function of surface oxidised multi-wall carbon nanotubes via cation exchange[J]. Blanchard, N. P.;Hatton, R. A.;Silva, S. R. P. CHEMICAL PHYSICS LETTERS, 2007(1-3)
  • [5] X-ray diffraction characterization on the alignment degree of carbon nanotubes[J]. Cao, AY;Xu, CL;Liang, J;Wu, DH;Wei, BQ. CHEMICAL PHYSICS LETTERS, 2001(1-2)
  • [6] Metal-nanocluster-filled carbon nanotubes: Catalytic properties and possible applications in electrochemical energy storage and production[J]. Che, GL;Lakshmi, BB;Martin, CR;Fisher, ER. LANGMUIR, 1999(03)
  • [7] Oxygen Functionalization of Multiwall Carbon Nanotubes by Microwave-Excited Surface-Wave Plasma Treatment[J]. Chen, Changlun;Liang, Bo;Ogino, Akihisa;Wang, Xiangke;Nagatsu, Masaaki. JOURNAL OF PHYSICAL CHEMISTRY C, 2009(18)
  • [8] Raman spectroscopy of carbon nanotubes[J]. Dresselhaus, MS;Dresselhaus, G;Saito, R;Jorio, A. PHYSICS REPORTS-REVIEW SECTION OF PHYSICS LETTERS, 2005(02)
  • [9] Identifying and counting point defects in carbon nanotubes[J]. Fan, YW;Goldsmith, BR;Collins, PG. NATURE MATERIALS, 2005(12)
  • [10] Finklea H.O., 1988, SEMICONDUCTOR ELECTR