An eco-friendly, highly stable and efficient nanostructured p-type N-doped ZnO photocatalyst for environmentally benign solar hydrogen production

2012 ◽  
Vol 14 (10) ◽  
pp. 2790 ◽  
Author(s):  
Ashwini P. Bhirud ◽  
Shivaram D. Sathaye ◽  
Rupali P. Waichal ◽  
Latesh K. Nikam ◽  
Bharat B. Kale
Nanoscale ◽  
2020 ◽  
Vol 12 (14) ◽  
pp. 7766-7775 ◽  
Author(s):  
Jonathan Kampmann ◽  
Sophia Betzler ◽  
Hamidreza Hajiyani ◽  
Sebastian Häringer ◽  
Michael Beetz ◽  
...  

This work reveals deep insights into the photocorrosion mechanism of nanostructured p-type Li-doped CuO cathodes used for photoelectrochemical hydrogen production.


2013 ◽  
Vol 685 ◽  
pp. 216-220
Author(s):  
Shahab Khameneh Asl ◽  
Denis Unar ◽  
Sh. Kh. Asl

Photocatalyst materials is a challenging topic because it can be used in an important solution to energy and environmental issues. Recently, Z schemes based catalysts have been developed for increaseing the efficiency of water splitting process. In this paper, Pt doped Zno@ TiO2photocatalyst with a 3.2 eV band gap showed high activity for water splitting into H2and O2with an apparent quantum yield of 6.8 % at near UV ranges. In this composite, two oxide couples as an electron relay system employing to increase the efficiency of hydrogen production. Moreover, highly efficient for solar hydrogen production in the presence of electron donors were developed by adding Platinum.


2017 ◽  
Vol 5 (21) ◽  
pp. 10165-10172 ◽  
Author(s):  
Seung Yo Choi ◽  
Chang-Duk Kim ◽  
Dong Suk Han ◽  
Hyunwoong Park

We have for the first time synthesized a high efficiency CuAlO2 film on transparent conducting substrates via electrochemical deposition.


2019 ◽  
Vol 11 (1) ◽  
Author(s):  
Amirhossein Hasani ◽  
Quyet Van Le ◽  
Mahider Tekalgne ◽  
Min-Ju Choi ◽  
Tae Hyung Lee ◽  
...  

Author(s):  
Moritz Kölbach ◽  
Kira Rehfeld ◽  
Matthias M. May

We analyse the potential of solar hydrogen production in remote and cold world regions such as Antarctica and quantify the efficiency benefits of thermal coupling.


Energies ◽  
2021 ◽  
Vol 14 (12) ◽  
pp. 3437
Author(s):  
Andreas Rosenstiel ◽  
Nathalie Monnerie ◽  
Jürgen Dersch ◽  
Martin Roeb ◽  
Robert Pitz-Paal ◽  
...  

Global trade of green hydrogen will probably become a vital factor in reaching climate neutrality. The sunbelt of the Earth has a great potential for large-scale hydrogen production. One promising pathway to solar hydrogen is to use economically priced electricity from photovoltaics (PV) for electrochemical water splitting. However, storing electricity with batteries is still expensive and without storage only a small operating capacity of electrolyser systems can be reached. Combining PV with concentrated solar power (CSP) and thermal energy storage (TES) seems a good pathway to reach more electrolyser full load hours and thereby lower levelized costs of hydrogen (LCOH). This work introduces an energy system model for finding cost-optimal designs of such PV/CSP hybrid hydrogen production plants based on a global optimization algorithm. The model includes an operational strategy which improves the interplay between PV and CSP part, allowing also to store PV surplus electricity as heat. An exemplary study for stand-alone hydrogen production with an alkaline electrolyser (AEL) system is carried out. Three different locations with different solar resources are considered, regarding the total installed costs (TIC) to obtain realistic LCOH values. The study shows that a combination of PV and CSP is an auspicious concept for large-scale solar hydrogen production, leading to lower costs than using one of the technologies on its own. For today’s PV and CSP costs, minimum levelized costs of hydrogen of 4.04 USD/kg were determined for a plant located in Ouarzazate (Morocco). Considering the foreseen decrease in PV and CSP costs until 2030, cuts the LCOH to 3.09 USD/kg while still a combination of PV and CSP is the most economic system.


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