Lithium orthosilicate (Li4SiO4) represents a potential class of high-temperature sorbents for CO2 capture in power plants and sorption enhanced methane reforming to produce H2. However, conventional wisdom suggests that pure Li4SiO4 should have extremely slow sorption kinetics at realistic low CO2 concentrations. Here, we report the opposite result: using a simple and cost-effective glucose-based mild combustion procedure, an unusually efficient and pure form of Li4SiO4 (MC-0.6) was synthesized to achieve a maximum uptake capacity of 35.0 wt% at 580 °C for CO2 concentrations under 15 vol% and maintained this capacity over multiple cycles. The characterization results showed that highly porous nano-agglomerate-like (50–100 nm) morphologies w...
In this study, high-temperature CO2 capture by solid sorbent based on lithium orthosilicate (Li4SiO4...
A series of lithium silicates with improved CO2 sorption capacity were successfully synthesized usin...
5 Figures, 4 Tables.-- © 2018. This manuscript version is made available under the CC-BY-NC-ND 4.0 l...
Removing carbon dioxide from industrial effluents (i.e. flue gas) via solid sorbents is a potential ...
Structurally modified and improved NaBr-co-doped Li4SiO4 ceramics were developed for CO2 absorption ...
The effective capturing of carbon dioxide using regenerable high capacity sorbents is a prerequisite...
A series of Li4SiO4 was synthesized using LiNO3 and six different silicon precursors. The precipitat...
In this study, lithium orthosilicate-based pellets were developed and characterized as potential reg...
Lithium orthosilicate (Li4SiO4) is known to be a high temperature CO2 capture material. This work wa...
Since the CO2 separation is the first and most energy intensive step of carbon capture and storage (...
Lithium orthosilicate (Li4SiO4) is an attractive high-temperature CO2 sorbent (>650 ??C) because ...
The aim of this research work is to optimize the synthesis of Li4SiO4 by a solid state method to max...
Lithium orthosilicate (Li4SiO4) sorbents have been reported to show relatively high CO2 capture cap...
The application of a CO2 sorbent which releases CO2 at a lower temperature than calcium oxide is of ...
10 Figuras, 1 TablaThis study investigates CO2 capture on in-house-prepared Li4SiO4, a commercial Li...
In this study, high-temperature CO2 capture by solid sorbent based on lithium orthosilicate (Li4SiO4...
A series of lithium silicates with improved CO2 sorption capacity were successfully synthesized usin...
5 Figures, 4 Tables.-- © 2018. This manuscript version is made available under the CC-BY-NC-ND 4.0 l...
Removing carbon dioxide from industrial effluents (i.e. flue gas) via solid sorbents is a potential ...
Structurally modified and improved NaBr-co-doped Li4SiO4 ceramics were developed for CO2 absorption ...
The effective capturing of carbon dioxide using regenerable high capacity sorbents is a prerequisite...
A series of Li4SiO4 was synthesized using LiNO3 and six different silicon precursors. The precipitat...
In this study, lithium orthosilicate-based pellets were developed and characterized as potential reg...
Lithium orthosilicate (Li4SiO4) is known to be a high temperature CO2 capture material. This work wa...
Since the CO2 separation is the first and most energy intensive step of carbon capture and storage (...
Lithium orthosilicate (Li4SiO4) is an attractive high-temperature CO2 sorbent (>650 ??C) because ...
The aim of this research work is to optimize the synthesis of Li4SiO4 by a solid state method to max...
Lithium orthosilicate (Li4SiO4) sorbents have been reported to show relatively high CO2 capture cap...
The application of a CO2 sorbent which releases CO2 at a lower temperature than calcium oxide is of ...
10 Figuras, 1 TablaThis study investigates CO2 capture on in-house-prepared Li4SiO4, a commercial Li...
In this study, high-temperature CO2 capture by solid sorbent based on lithium orthosilicate (Li4SiO4...
A series of lithium silicates with improved CO2 sorption capacity were successfully synthesized usin...
5 Figures, 4 Tables.-- © 2018. This manuscript version is made available under the CC-BY-NC-ND 4.0 l...