High Efficient Arsenic Removal by In-layer Sulphur of Layered Double Hydroxide

Author(s):  
Yiming Huang ◽  
Zhe Liu ◽  
Arixin Bo ◽  
Xiao Tang ◽  
Wayde Martens ◽  
...  
CrystEngComm ◽  
2022 ◽  
Author(s):  
Meng Ya Yang ◽  
Rong Zhao ◽  
Yi Liu ◽  
Hua Lin

In this work, high efficient electrocatalyst Fe-Ni2P/N-GO with hierarchical structure was developed through phosphating NiFe-based layered double hydroxide (LDH) supported by N-doped graphene oxide (GO), which was assembled by the...


2020 ◽  
Vol 18 ◽  
pp. 100401 ◽  
Author(s):  
Hasna Ouassif ◽  
El Mostafa Moujahid ◽  
Redouane Lahkale ◽  
Rachid Sadik ◽  
Fatima Zahra Bouragba ◽  
...  

RSC Advances ◽  
2018 ◽  
Vol 8 (40) ◽  
pp. 22694-22709 ◽  
Author(s):  
Junya Wang ◽  
Taiping Zhang ◽  
Min Li ◽  
Ying Yang ◽  
Peng Lu ◽  
...  

This paper provides a review of the currently available literature focusing on arsenic removal using LDHs.


Nanomaterials ◽  
2019 ◽  
Vol 9 (12) ◽  
pp. 1688 ◽  
Author(s):  
Xiaoyu Hu ◽  
Peilong Li ◽  
Xin Zhang ◽  
Bin Yu ◽  
Chao Lv ◽  
...  

A high-efficient and low-cost catalyst on hydrogen isotope separation between hydrogen and water is an essential factor in industrial application for heavy water production and water detritiation. In past studies, Pt-based catalysts were developed but not practical for commercial use due to their high cost for vapor phase catalytic exchange (VPCE), while for impregnated nickel catalysts with a lower cost the problems of agglomeration and low Ni utilization existed. Therefore, to solve these problems, in-situ grown Ni-based catalysts (NiAl-LDO) derived from a layered double hydroxide (LDH) precursor were fabricated and first applied in VPCE in this work. Compared with traditional impregnated Ni-based catalysts, NiAl-LDO catalysts own a unique layered structure, homogeneous dispersed metallic phase, higher specific surface area as well as stronger metal-support interactions to prevent active metal from agglomerating. These advantages are beneficial for exposing more active sites to improve dynamic contacts between H2 and HDO in a catalyst surface and can bring excellent catalytic activity under a reaction temperature of lower than 400 °C. Additionally, we found that the dissociative chemisorption of HDO and H2 occurs not only in Ni (111) but also in NiO species where chemisorbed H(ads), D(ads), OH(ads) and OD(ads) are formed. The results highlight that both of the Ni2+ species and Ni0 species possess catalytic activities for VPCE process.


2011 ◽  
Vol 14 (1) ◽  
pp. 21-27 ◽  
Author(s):  
Mridul Chetia ◽  
Rajib L. Goswamee ◽  
Saumen Banerjee ◽  
Soumya Chatterjee ◽  
Lokendra Singh ◽  
...  

2021 ◽  
Vol 16 (1) ◽  
pp. 45-51
Author(s):  
Chairul - Irawan ◽  
Ayu Ratma Sari ◽  
Aproditha Yulianingtias ◽  
Rizani Aulia Melinda ◽  
Agus Mirwan

The Mn-Fe layered double hydroxide using chloride in the interlayer anion was successfully synthesized using chemical co-precipitation methods. The Mn-Fe LDH was then applied as adsorbent for arsenic removal from synthetic acid mine drainage. The adsorbent characterizations of SEM and XRD analysis showed that the Mn-Fe LDH had many different functional groups and a high specific surface area for the adsorption processes. The morphological structure of Mn-Fe LDH by the SEM-EDS analysis method shows a round shape structure with a particle size of about 1 μm, and the XRF analysis method shows that the Mn and Fe elements dominate more than other components. Batch adsorption experimental conducted using the Mn-Fe LDH with the interlayer anion of chloride as an adsorbent to study the effect of contact time, equilibrium pH, and temperature on the arsenic removal. The Mn-Fe LDH showed high adsorption uptake capacity and selectivity for the arsenic in the synthetic acid mine drainage. The adsorption and ion exchange between interlayer chloride anions in Mn-Fe LDH and As (V) solution was the main adsorption mechanism. Therefore, the Mn-Fe LDH can be used as an adsorbent in water and wastewater treatment. In contrast, this research has the potential to be processed and developed into advanced materials.


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