Pollution prevention in the semiconductor industry through recovery and recycling of gallium and arsenic from gaas solid wastes

被引:4
|
作者
J. A. Sturgill
J. T. Swartzbaugh
P. M. Randall
机构
[1] University of Dayton,
[2] Research Institute,undefined
[3] Environmental Science and Engineering Group,undefined
[4] 300 College Park,undefined
[5] Dayton,undefined
[6] Ohio 45469–0132,undefined
[7] US EPA,undefined
[8] National Risk Management Research Laboratory,undefined
[9] 26 W Martin Luther King Drive,undefined
[10] Cincinnati,undefined
[11] Ohio 45268,undefined
来源
Clean Products and Processes | 1999年 / 1卷 / 4期
关键词
Arsenic; GaAs; Gallium; Solid Waste; Patent Application;
D O I
10.1007/s100980050038
中图分类号
学科分类号
摘要
 A process has been developed for the on-site recovery of both arsenic and gallium from gallium arsenide (GaAs) solid wastes. Until the present, very little effort has been made to attempt to recycle any but the largest-sized pieces of such wastes back into the crystal-growing process. Even when recovery is attempted, all of the effort has been focused on the high-value gallium and no efforts have been made for recovery and reuse of the toxic constituent arsenic. The process described herein first involves the thermal separation of GaAs solid wastes into their constituent elements (with a minimum of energy input or additional handling). Each of the separated elements is then purified to the required levels for further crystal growth using low-cost procedures. Because of this three step approach, the developed procedure can accommodate a wide range of input material characteristics. Prior work with GaAs thermal separation and constituent element purification provided a template for the development of this process, and subsequent thermodynamic consideration of each of these unit operations provided a theoretical basis for process optimization. A patent application for the developed process has been submitted to the United States Patent Office. This paper details the development of the thermal separation process, with important design specifications.
引用
收藏
页码:248 / 256
页数:8
相关论文
共 24 条
  • [21] Enhancement of bioenergy recovery from agricultural wastes through recycling of cellulosic alcoholic fermentation vinasse for anaerobic co-digestion
    Meng, Liang
    Jin, Keda
    Yi, Ran
    Chen, Mengdi
    Peng, Jingjing
    Pan, Yulong
    BIORESOURCE TECHNOLOGY, 2020, 311
  • [22] Pollution Prevention- Recovery of Copper Resource from Desalination Brine through LIX 984N/Kerosene System
    Lee, Cheng-Han
    Chen, Wei-Sheng
    Wu, Jun-Yi
    WATER AIR AND SOIL POLLUTION, 2023, 234 (09):
  • [23] Pollution Prevention- Recovery of Copper Resource from Desalination Brine through LIX 984N/Kerosene System
    Cheng-Han Lee
    Wei-Sheng Chen
    Jun-Yi Wu
    Water, Air, & Soil Pollution, 2023, 234
  • [24] Recovery of binary-component textile wastewater contaminated by reactive dyes through adsorption onto magnetic separable MgO nanoparticles produced from solid waste of ductile cast iron industry, process identifications, characterization and regeneration
    Hassanzadeh, Hosseinali
    Salem, Amin
    Salem, Shiva
    PROCESS SAFETY AND ENVIRONMENTAL PROTECTION, 2023, 178 : 46 - 55