Influence of surface morphology on the performance of nanostructured ZnO-loaded ceramic honeycomb for syngas desulfurization. (1st January 2018)
- Record Type:
- Journal Article
- Title:
- Influence of surface morphology on the performance of nanostructured ZnO-loaded ceramic honeycomb for syngas desulfurization. (1st January 2018)
- Main Title:
- Influence of surface morphology on the performance of nanostructured ZnO-loaded ceramic honeycomb for syngas desulfurization
- Authors:
- Oh, Wen-Da
Lei, Junxi
Veksha, Andrei
Giannis, Apostolos
Lisak, Grzegorz
Chang, Victor W.-C.
Hu, Xiao
Lim, Teik-Thye - Abstract:
- Graphical abstract: Highlights: ZnO nanorods (ZnO-nR) and nanosheets (ZnO-nS) were immobilized on honeycomb. The nanostructured ZnO-loaded honeycomb were used for syngas desulfurization. The mechanisms of ZnO-nS and ZnO-nR formation are proposed to provide further insights. ZnO-nS (single layer) present better performance than ZnO-nS (three layers), ZnO-nR and commercial ZnO. ZnO-nS has better regenerability and higher sorption capacity than other sorbents. Abstract: A facile seeding-growth protocol was employed to immobilize nanostructured ZnO with nanorod and nanosheet morphologies (ZnO-nR and ZnO-nS, respectively) on cordierite-mullite honeycomb support. By varying the hexamethylenetetramine (HMTA) concentration, Zn precursor, and number of growth cycles during synthesis, different nanorod sizes, nanosheets textures and ZnO layers were obtained. The ZnO-loaded honeycombs were characterized using FESEM, EDX and XRD indicating that the immobilized layer of nanostructured ZnO was highly-crystalline with a thickness of ∼1 µm. The synthesized nanostructured ZnO-loaded honeycombs and a commercial ZnO sorbent were applied for removal of sulfur compounds (H2 S and COS) from syngas at 400 °C. The ZnO-nS showed significantly longer breakthrough time (BTTS ) and higher total sulfur sorption capacity (48.7 mg g −1 ZnO, BTTS = 75.4 min) than the ZnO-nR (9–12 mg g −1 ZnO, BTTS = 23–25 min) and commercial ZnO sorbent (4.6 mg g −1 ZnO, BTTS = 6.8 min). The superior sorption capacityGraphical abstract: Highlights: ZnO nanorods (ZnO-nR) and nanosheets (ZnO-nS) were immobilized on honeycomb. The nanostructured ZnO-loaded honeycomb were used for syngas desulfurization. The mechanisms of ZnO-nS and ZnO-nR formation are proposed to provide further insights. ZnO-nS (single layer) present better performance than ZnO-nS (three layers), ZnO-nR and commercial ZnO. ZnO-nS has better regenerability and higher sorption capacity than other sorbents. Abstract: A facile seeding-growth protocol was employed to immobilize nanostructured ZnO with nanorod and nanosheet morphologies (ZnO-nR and ZnO-nS, respectively) on cordierite-mullite honeycomb support. By varying the hexamethylenetetramine (HMTA) concentration, Zn precursor, and number of growth cycles during synthesis, different nanorod sizes, nanosheets textures and ZnO layers were obtained. The ZnO-loaded honeycombs were characterized using FESEM, EDX and XRD indicating that the immobilized layer of nanostructured ZnO was highly-crystalline with a thickness of ∼1 µm. The synthesized nanostructured ZnO-loaded honeycombs and a commercial ZnO sorbent were applied for removal of sulfur compounds (H2 S and COS) from syngas at 400 °C. The ZnO-nS showed significantly longer breakthrough time (BTTS ) and higher total sulfur sorption capacity (48.7 mg g −1 ZnO, BTTS = 75.4 min) than the ZnO-nR (9–12 mg g −1 ZnO, BTTS = 23–25 min) and commercial ZnO sorbent (4.6 mg g −1 ZnO, BTTS = 6.8 min). The superior sorption capacity of ZnO-nS was attributed to the significantly better surface coverage and higher crystallinity of ZnO nanosheets on the honeycomb. The introduction of additional ZnO nanosheets layers (up to 3 layers) through repeated growth process increased the ZnO loading to ∼1.5 ± 0.1 mg mm −1 (from ∼0.9 ± 0.1 mg mm −1 in the single layer) but resulted in poorer performance (11.6 mg g −1 ZnO, BTTS = 24.6 min) compared to ZnO-nS. This was due to the increased internal mass transfer resistance and decreased density of the effective reactive sites. The mechanism of ZnO-nS formation is also proposed to provide further insights. Overall, the ZnO-nS showed better regenerability, lower mass transfer resistance, and higher sorption capacity compared to the commercial ZnO and ZnO-nR sorbents indicating that it has a promising potential for syngas desulfurization. … (more)
- Is Part Of:
- Fuel. Volume 211(2018)
- Journal:
- Fuel
- Issue:
- Volume 211(2018)
- Issue Display:
- Volume 211, Issue 2018 (2018)
- Year:
- 2018
- Volume:
- 211
- Issue:
- 2018
- Issue Sort Value:
- 2018-0211-2018-0000
- Page Start:
- 591
- Page End:
- 599
- Publication Date:
- 2018-01-01
- Subjects:
- Nanostructured ZnO -- ZnO nanosheets -- Honeycomb -- H2S removal -- Syngas -- Gasification
Fuel -- Periodicals
Coal -- Periodicals
Coal
Fuel
Periodicals
662.6 - Journal URLs:
- http://www.sciencedirect.com/science/journal/latest/00162361 ↗
http://www.elsevier.com/journals ↗ - DOI:
- 10.1016/j.fuel.2017.09.088 ↗
- Languages:
- English
- ISSNs:
- 0016-2361
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 4048.000000
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British Library HMNTS - ELD Digital store - Ingest File:
- 4873.xml