Hill Donald, Niu Yubiao, Apsey Henry, Olonisakin Omotoke, Palmer Richard E, Alexander Shirin
Energy Safety Research Institute (ESRI), Faculty of Science and Engineering, Swansea University, Bay Campus, Fabian Way, Swansea SA1 8EN, U.K.
Nanomaterials Lab, Faculty of Science and Engineering, Swansea University, Bay Campus, Fabian Way, Swansea SA1 8EN, U.K.
ACS Appl Eng Mater. 2024 Jan 22;2(2):305-312. doi: 10.1021/acsaenm.3c00575. eCollection 2024 Feb 23.
In this paper, we report the HS adsorption behavior of a sorbent composed of mixtures of tenorite (CuO) and brochantite [Cu(OH)SO]. These materials are readily prepared through the addition of NaOH to CuSO. They can be loaded onto polymer foams to create effective filters that can remove malodorous HS gas, as evidenced by breakthrough tests. X-ray diffraction shows that the ratio of the two compounds in the mixture can be finely tuned by varying the amount of NaOH that is added to the reaction mixture. X-ray photoelectron spectroscopy shows that brochantite, like tenorite, has the ability to chemically adsorb HS. Correlation of the HS breakthrough data with scanning transmission electron microscopy measurements shows that the most effective sorbents contain nanoscale needle-like particles. These are likely to be formed largely by the tenorite phase. The samples with the greatest HS adsorption efficacy contained less than 20% tenorite in the mixture, where these particles had the greatest abundance. The application of this sorbent onto porous substrates to create effective filters, along with the synthetic ease of its production, could allow this methodology to find use in a number of areas where HS poses a problem. This could include areas where protective clothing is required to adsorb the gas from environments where there is a high level of HS, for example, in wastewater treatment plants, oil and gas wells, or in the medical sector, where it could be deployed as filter media.
在本文中,我们报告了由黑铜矿(CuO)和羟胆矾[Cu(OH)SO₄]混合物组成的吸附剂对硫化氢的吸附行为。这些材料通过向硫酸铜中添加氢氧化钠很容易制备。通过穿透试验证明,它们可以负载到聚合物泡沫上以制成有效的过滤器,从而去除有恶臭的硫化氢气体。X射线衍射表明,通过改变添加到反应混合物中的氢氧化钠量,可以精细调节混合物中两种化合物的比例。X射线光电子能谱表明,羟胆矾与黑铜矿一样,具有化学吸附硫化氢的能力。硫化氢穿透数据与扫描透射电子显微镜测量结果的相关性表明,最有效的吸附剂含有纳米级针状颗粒。这些颗粒很可能主要由黑铜矿相形成。硫化氢吸附效率最高的样品在混合物中黑铜矿含量不到20%,而这些颗粒的丰度最大。将这种吸附剂应用于多孔基材以制成有效的过滤器,以及其生产的合成简便性,可能使该方法在硫化氢造成问题的许多领域得到应用。这可能包括需要防护服从硫化氢含量高的环境中吸附气体的区域,例如废水处理厂、油气井,或者在医疗领域,它可以作为过滤介质部署。