Owing to their small dimensions and large surface-to-volume ratio, nanowires are very promising one-dimensional objects that can be used in a wide range of biomedical and nanotechnological applications1. In the literature, many nanowires containing a single component with functional properties have been reported2-7. But when multiple materials (metals, polymers and metal oxides) are incorporated sequentially within a single nanowire, multifunctional nanowires can be made8,9. When several segments are connected inside a single nanowire, functional properties may appear that were not present when only the individual segments were used. For instance, nanomotors containing Au and Pt segments within a single nanowire were reported that moved autonomously when placed in hydrogen peroxide4. Suitable techniques for the formation of multisegmented nanowires are infiltration and templated electrodeposition8,9.
In 1987, Penner and Martin were the first to publish the use of templated electrodeposition for the formation of Au nanowires in polycarbonate membranes10. Since then, many other researchers have started using templated electrodeposition for the synthesis of nanowires with different dimensions, using either polycarbonate track-etched membranes (PCTE) or anodized aluminum oxide (AAO) membranes and templates11. The advantages of using templated electrodeposition for nanowire synthesis are its cost-effective nature as electrodeposition is usually performed under mild conditions, the possibility to form nanowires from either metals, metal oxides and/or polymers, and its ability to create an exact negative replica of the template used11. Furthermore, segmented nanowires can be formed by sequential deposition of two or more different phases, and when a nanotube of one of the two phases can be made by templated electrodeposition, coaxial nanowires containing two different phases can be made.
Metal oxides can be electrodeposited when the respective metal ions are insoluble in aqueous solutions at high pH. For the necessary oxygen, three different precursors can be used, i.e. nitrate ions12-15, hydrogen peroxide13,16,17, and molecular oxygen18. With the use of nitrate ions, as in this protocol, application of a potential more negative than -0.9 V vs. Ag/AgCl leads to a locally increased pH by reduction of nitrate at the cathode19,20:
NO3- + H2O + 2e- → NO2- + 2OH-. (1)
When the electrolyte solution is heated to 60-90 °C, ZnO nanowires will form from precipitated zinc hydroxide:
Zn2+ + 2OH- → ZnO + H2O. (2)
Upon application of a potential to the working electrode, which is positioned at the pore bottom in templated electrodeposition, the pH inside the pore is locally increased resulting in local nanowire formation. Since ZnO is an n-type semiconductor, reactions (1) and (2) can continue at the ZnO/electrolyte interface, resulting in the formation of a crystalline and dense ZnO nanowire21,22.
Several methods exist for the synthesis of TiO2 nanotubes, but for the formation of a coaxial structure using a sequential electrodeposition process, the electrochemically induced sol-gel method is most suitable. This method for cathodic electrodeposition of TiO2 films was first introduced by Natarajan et al. in 1996 23. and was further improved by Karuppuchamy et al. in 2001 19,24. Using this method, titanium oxysulfate (TiOSO4) powder is dissolved in an aqueous solution of hydrogen peroxide (H2O2) upon the formation of a peroxotitanate complex (Ti(O2)SO4):
TiOSO4 + H2O2 → Ti(O2)SO4 + H2O. (3)
At potentials more negative than -0.9 V vs. Ag/AgCl, the pH at the electrode surface is increased by reduction of nitrate (reaction (1)), forming a titanium hydroxide gel19,20:
Ti(O2)SO4 + 2OH- + (x+1) H2O → TiO(OH)2.xH2O + H2O2 + SO42-. (4)
Natarajan et al. used differential thermal analysis to find that water is removed from the gel around 283 °C during thermal annealing, which results in the formation of an amorphous TiO2 phase23. For a planar film, crystallization into the anatase phase occurs when the temperature is increased above 365 °C23,25, while crystallization occurs at a temperature between 525 and 550 °C when an AAO template is used25.
TiO(OH)2·xH2O → TiO2 + (x+1)H2O. (5)
The pore diameter of the AAO template used determines whether a solid nanowire or open nanotube will be formed. Deposition in a template with a small pore diameter (~50 nm) results in nanowire formation20,26, while applying the same method inside a pore with larger diameter (~200 nm) results in nanotube formation25. This is because gel collapse can take place upon removal of excess water.
In the early 1970s, Fujishima and Honda were the first to publish a system for direct water splitting under UV light, which was accomplished by a rutile electrode coupled to a platinum electrode27,28. Since then, over 130 semiconductor materials were identified as photocatalysts29-31. Of these, titanium dioxide32-36, zinc oxide37-40, and iron oxide41,42 are among the most intensively studied materials. The surface-to-volume ratio of these materials can be increased drastically when nanoparticles or nanowires are used, leading to improved photocatalytic efficiencies29,30,43-49.
For the construction of photocatalytic Ag|ZnO nanowires, ZnO, which is a photoactive n-type semiconductor, was connected with Ag via sequential electrodeposition inside the same template50. Within such a single nanowire, the ZnO photoanode and Ag cathode are directly coupled without the need of an external circuit connecting the electrodes, which is in contrast to the situation in conventional photo-electrochemical cells. This simplifies device architecture considerably and increases the efficiency by reduction of Ohmic losses in the system. ZnO and Ag segments were coupled since the electron affinity of ZnO (4.35 eV vs. vacuum) is very close to the work function of Ag (4.26 eV vs. vacuum). This induces the formation of a Schottky barrier between both phases51, which allows excited electrons in the conduction band of ZnO to flow to Ag, but not vice versa, thus prohibiting the chance of electron-hole recombination52. The active wurtzite phase of ZnO can be formed already at 60-90 °C, which provides an easy and cost effective way of nanowire formation. This is in contrast to most other photoactive oxides that require an intermediate annealing step at high temperatures when made via cathodic electrodeposition.
The conversion of methanol and water into hydrogen and carbon dioxide was used as a model reaction to demonstrate the use of a segmented nanowire containing a metal and a metal oxide phase for autonomous H2 formation under the influence of UV light. In this experiment, methanol is used as a hole scavenger which is oxidized to CO2 at the ZnO segment, following the net reaction
CH3OH + H2O + 6h+ → CO2 + 6H+, (6)
where h+ represents an electron hole. The protons formed at the ZnO segment are reduced to H2 at the Ag surface, following the reaction
2H+ + 2e- → H2. (7)
Since the total energy required for reactions (6) and (7) is much smaller than the band gap of ZnO (0.7 and 3.2 eV, respectively), this process can take place without the need for an external power source. This process is schematically illustrated in Figure 1.
In this protocol, the experimental procedures of templated electrodeposition for the formation of segmented and coaxial nanowires containing both a metal and a semiconductor phase are explained. A procedure for the formation of segmented Ag|ZnO nanowires is outlined, as well as the formation of TiO2 nanotubes and their subsequent filling with Ag to yield coaxial TiO2-Ag nanowires. Furthermore, the photocatalytic activity of the Ag|ZnO nanowires is demonstrated by converting a methanol/water mixture into H2 and CO2 gas upon irradiation with UV light employing a Pd-based sensor for H2 detection. The emphasis of this protocol is on the preparation and photocatalytic characterization of two differently segmented metal oxide|metal nanowire modules, and a more in-depth treatment and an example of a multifunctional nanowire can be found elsewhere53. The water splitting reaction that was employed using the coaxial TiO2-Ag nanowires can also be found elsewhere25.