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Rare precious metals company mainly engaged in electroplating and metal surface treatment, environmental treatment, washed clean of raw materials: silver nitrate, nitric acid and rhodium, palladium nitrate; Asia selenium acid, selenium dioxide, tellurium dioxide, mineral selenium powder Japan, Mitsubishi Se powder, Mitsui, Sumitomo, emerging, Germany selenium powder; molybdenum trioxide, DMF; TX-10, NP-9 series, EDTA series; sodium hypophosphite, nickel nitrate, metal thallium, rhodium, palladium, platinum , Beryllium, Ritek, zirconium products; sponge palladium; electrolytic nickel, nickel corner, hydrazine hydrate, Ultra-fine silver, nano-silver; Thallium sulfate, iodized Thallium sulfate, nickel, copper sulfate, copper chloride, copper oxide, nickel oxide , Lanthanum oxide, oxidation Er, bismuth oxide, bismuth ingots, tin ingots, indium ingot, indium foil, Xinding, zinc powder; SnCl2, sulfate-tin; hydrofluoric acid, white Vaseline, propylene glycol, dichloro Methane, the propylene glycol, triethanolamine, triethanolamine oleic acid soap, chloroform, pyrophosphate copper, Gioia sodium, polyacrylamide, PAC, oleic acid, Glycerol, phosphate and other domestic and imported chemical series.

公司主要经营稀贵金属及电镀金属表面处理、环保污水处理、洗涤清洗原料:硝酸银、硝酸铑、硝酸钯;亚硒酸、二氧化硒、二氧化碲、日本矿业硒粉、三菱硒粉、三井、住友、新兴、德国硒粉;三氧化钼、二甲基甲酰胺;TX-10、NP-9系列、EDTA系列;次亚磷酸钠、硝酸镍、金属铊、铑、钯、铂、铍、铼、锆系列产品;海绵钯;电解镍、镍角、水合肼、特细银粉、纳米银粉;硫酸铊、碘化铊、硫酸镍、硫酸铜、氯化铜、氧化铜、氧化镍、氧化镧、氧化铒、氧化铋、铋锭、锡锭,铟锭、铟箔、锌锭,锌粉;氯化亚锡、硫酸亚锡;氢氟酸、白凡士林、丙二醇,二氯甲烷,二丙二醇,三乙醇胺、三乙醇胺油酸皂、三氯甲烷、焦磷酸铜、焦亚硫酸钠、聚丙烯酰胺、聚合氯化铝、油酸、甘油、磷酸等国产、进口化工系列。

The experimental results proved the intermediate product of H2S in the leaching of marmatite. The results also showed that oxygen, element sulfur disperser as well as chloride ions could accelerate the electrochemical oxidation of marmatite in sulfuric acid. The electrochemical oxidation of sphalerite was retarded but that of marmatite was promoted with the increase of acidity.

结果表明:在铁闪锌矿浸出过程中有H2S中间产物生成;通氧、元素硫分散剂以及氯离子引入浸出体系均能明显促进铁闪锌矿的电化学氧化;随硫酸浓度升高,铁闪锌矿的电化学氧化不断加强而闪锌矿的电化学氧化受抑。

Oxidizing feature which is oxidizing leaching of every element, studied kinetics of anode oxidation, analyzed oxidizing slag with XRD and SEM during suspension electrolysis of zinc sulphide mine. The results show that zinc sulphide concentrate in different suspension electrolysis solution can be oxidized. However, the ore in zinc sulphide, ammiaonia sulfate and sulfuric acid suspension electrolysis solution can be oxidized obviously and has better oxidation rate.

确定了硫化锌矿悬浮电解时的电解液后,我们又对硫化锌矿在悬浮电解过程氧化特征即矿物氧化时其中各元素的氧化溶出情况进行分析,对阳极氧化进行了动力学研究,对氧化渣进行XRD和SEM分析,以了解其含锌矿物在悬浮电解过程中的氧化规律,还进行了渣中元素硫的回收。

We put zinc sulphide mine into different sulphate system and analyzed polarization curve about anodic oxidation.we found that the mine was oxidized effectively and the rapid oxidation happened when we adopted the zinc sulphide ore suspension electrolyte which contained ZnSO_4,(NH_4)_2SO_4 and H_2SO_4. This system was suffice to product metal zinc industrially. The appropriate suspension electrolyte composition consisted of zinc 90~130g/l,(NH_4)_2SO_430~50g/l, H_2SO_430~50g/l, suspension electrolysis temperature 50℃, anodic oxidation potentiometer 0.6~0.8V.

研究了硫化锌矿在不同的硫酸盐体系中的溶解,通过阳极氧化极化曲线进行分析,得出当以硫酸锌、硫酸铵和硫酸作为硫化锌矿悬浮电解液时,矿物能够有效地被氧化,氧化速度最快,能满足工业上生产金属锌的要求,并且合适的悬浮电解液组成为:锌90~130g/l,硫酸铵30~50g/l,硫酸30~50g/l,悬浮电解温度40~50℃,阳极氧化电位0.6~0.8V。

Plasma assisted molecular beam epitaxy was employed to prepare ZnO thin films on Si(111) substrate.

在Si(111)衬底上利用等离子体辅助分子束外延生长氧化锌薄膜,研究了在不同衬底生长温度下(350~750℃)制备的ZnO薄膜的结构和光学性质。

The morphologies and structures of synthesized 1D ZnO nanomaterials have been investigated in detail.

研究了一维氧化锌纳米材料的结构特征。

A formula of critical volume fraction of ZnOw for the formation of the conductive nets of th.

通过分析和计算提出了树脂基/ZnOw复合材料导电通道形成所需四针状氧化锌晶须的临界体积含量υc。

The basal diet was corn-soybean meal.The first group was fed with basal diet adding 100 mg/kg chlortetracycline.

第1组为对照组,饲喂玉米-豆粕型基础日粮+金霉素100mg/kg,第2、3、4组为试验组,在基础日粮中添加氧化锌,添加水平依次为900、1800、3400mg/kg。

Of zinc oxide adhesive plaster.

氧化锌橡皮膏胶带的替代品。

Superhydrophobic terylene satin modified with aligned zinc oxide nanorods was prepared by a tepid-temperature wet chemical route.

用温和的湿化学法在涤纶绸缎的表面生长一层取向排列的氧化锌纳米棒阵列。

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