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Chemicophysical surface treatment and the experimental demonstration of Schottky-Mott rules for metal/semiconductor heterostructure interfaces.

Metal/semiconductor (MS) heterostructure is of wide interest in a number of areas including physics, chemistry, materials science, materials engineering, chemical engineering, and electrical engineering. It is an important element of modern technology. The present investigation describes a novel experimental technique to address the influence of interfacial chemical passivation on the Schottky-Mott [Naturwiss. 26, 843 (1938); Cambridge Philos. Soc. 34, 568 (1938)] rules for MS heterostructure, and to try to establish these rules. The success of the experiment derives from three remarkable findings: First, a semiconductor (Al(x)Ga(1-x)N), which is robust and relatively less susceptible to an easy reaction with foreign chemicals, is needed for the demonstration. Second, reactive ion etching together with wet chemical etching by certain selected chemical (such as KOH), but not by others (for example, H(3)PO(4) or aqua regia), can clean the semiconductor surface well, and remove/passivate the dangling chemical bonds from this surface. Third, a judicious selection of deposition parameters for the deposition of metal(s) preferably on a certain selected semiconductor can lead to metal deposition on the semiconductor surface by van der Waals type of epitaxy. Transmission electron microscopy and x-ray diffraction indicate that MS heterostructures, thus prepared, are very different from others; they appear to provide convincing experimental verification of the Schottky-Mott rules, and to establish these rules without any ambiguity. Others fail to do it.

Aluminum↗

[Peptic ulcer among workers in the engineering and chemical industries].

Incidence of peptic ulcer among workers employed in the engineering and chemical industries is presented in view of selected environmental factors. The study covered 157 workers with peptic ulcer who reported themselves to outpatient clinics at the Nitrogenous Fertilizers Plant in Pulawy and the Automobile Works in Lublin (5000 and 3252 employees, respectively). The study was conducted over a period of one year. It included: medical examinations, supplementary tests and a questionnaire survey. The questionnaire asked, among others, about working conditions, type of occupation performed and lifestyle. Peptic ulcer was diagnosed in 2.03% of workers engaged in the engineering industry and 1.82% of those working at the chemical plant. The incidence of peptic ulcer was higher among manual workers (2.18%) than in office workers (1.16%). The patients had been exposed to the following environmental factors: excessive noise--21%, vibration--17.2%, commuting--11.5%, extra work--14.5%, conflicts at work--13.5%, conflicts at home--15.3%, irregular meals--21.6%, alcohol intake--22.4%, cigarette smoking--62.4%. The study indicates that peptic ulcer is more often diagnosed in manual than in office workers and its incidence can be associated with working conditions and lifestyle. However, no significant variation in annual morbidity caused by peptic ulcer was observed among workers of the plants under study.

Chemical Industry↗

Best practices in incident investigation in the chemical process industries with examples from the industry sector and specifically from Nova Chemicals.

This paper will summarize best practices in incident investigation in the chemical process industries and will provide examples from both the industry sector and specifically from NOVA Chemicals. As a sponsor of the Center for Chemical Process Safety (CCPS), an industry technology alliance of the American Institute of Chemical Engineers, NOVA Chemicals participates in a number of working groups to help develop best practices and tools for the chemical process and associated industries in order to advance chemical process safety. A recent project was to develop an update on guidelines for investigating chemical process incidents. A successful incident investigation management system must ensure that all incidents and near misses are reported, that root causes are identified, that recommendations from incident investigations identify appropriate preventive measures, and that these recommendations are resolved in a timely manner. The key elements of an effective management system for incident investigation will be described. Accepted definitions of such terms as near miss, incident, and root cause will be reviewed. An explanation of the types of incident classification systems in use, along with expected levels of follow-up, will be provided. There are several incident investigation methodologies in use today by members of the CCPS; most of these methodologies incorporate the use of several tools. These tools include: timelines, sequence diagrams, causal factor identification, brainstorming, checklists, pre-defined trees, and team-defined logic trees. Developing appropriate recommendations and then ensuring their resolution is the key to prevention of similar events from recurring, along with the sharing of lessons learned from incidents. There are several sources of information on previous incidents and lessons learned available to companies. In addition, many companies in the chemical process industries use their own internal databases to track recommendations from incidents and to share learnings internally.

Accidents, Occupational↗

Intraocular melanoma linked to occupations and chemical exposures.

We conducted a case-control study in the western United States to determine the relation between occupations or chemical exposures and increased risk of uveal melanoma. Among men (221 patients, 447 controls), we found increased risks for occupational groups who had intense exposure to ultraviolet light [odds ratio (OR) = 3.0; 95% confidence interval (CI) = 1.2-7.8], welding exposure (OR = 2.2; 95% CI = 1.3-3.5), and asbestos exposure (OR = 2.4; 95% CI = 1.5-3.9 for most likely exposed). The highest odds ratio was for the small number of men (nine cases, three controls) who were chemists, chemical engineers, and chemical technicians (OR = 5.9; 95% CI = 1.6-22.7). Odds ratios also were elevated for exposures to antifreeze, formaldehyde, pesticides, and carbon tetrachloride, but these findings, based on recall of specific chemical exposures, are more subject to recall bias than the findings based on occupational groups.

Asbestos↗

Catalytically active polymers obtained by molecular imprinting and their application in chemical reaction engineering.

Molecular imprinting is a way of creating polymers bearing artificial receptors. It allows the fabrication of highly selective plastics by polymerizing monomers in the presence of a template. This technique primarily had been developed for the generation of biomimetic materials to be used in chromatographic separation, in extraction approaches and in sensors and assays. Beyond these applications, in the past few years molecular imprinting has become a tool for producing new kinds of catalysts. For catalytic applications, the template must be chosen, so that it is structurally comparable with the transition state (a transition state analogue, TSA) of a reaction, or with the product or substrate. The advantage of using these polymeric catalysts is obvious: the backbone withstands more aggressive conditions than a bio material could ever survive. Results are presented showing the applicability of a molecularly imprinted catalyst in different kinds of chemical reactors. It is demonstrated that the catalysts can be utilized not only in batch but also in continuously driven reactors and that their performance can be improved by means of chemical reaction engineering.

Amines↗

A chemical and engineering analysis of dust in textile mills.

Proximate chemical analysis was conducted on the carding, spinning and weave rooms of textile mills. The dust was found to be composed of inorganic, cellulosic and noncellulosic organics in carding and spinning. The percentage of noncellulosic organic (the component of cotton dust considered to be responsible for byssinosis in cotton textile workers) in ring spinning was found to be one-half the percentage composition of the card room dust. The cellulosic percentage of spinning room dust is elevated above that found in card rooms. In weave rooms the composition of dust is a function of the fabric being produced, environmental control systems, and machinery. In all weave rooms where dust levels were sufficiently above background, all components of the dust were accounted for by the proximate chemical analysis without the presence of a noncellulosic organic component. The card room, spinning room and weave room produce dusts that are very different in composition, to the extent that the proximate chemical analysis could identify the area of origin of dust samples from a textile mill.

Cellulose, Oxidized↗

On some dynamical diagrams of chemical reaction engineering.

A brief historical survey of some of the influential types of diagrams that have been used in chemical reaction engineering is given. These include the phase plane, the simple autocatalytic diagram, and the stroboscopic phase plane. (c) 1999 American Institute of Physics.

Journal Article↗

Medical students at risk of nosocomial transmission of Mycobacterium tuberculosis.

SETTING: University and teaching hospital in Rio de Janeiro, Brazil, a city with a high prevalence of tuberculosis (TB). OBJECTIVE: To determine whether medical students are at increased risk of nosocomial transmission of Mycobacterium tuberculosis relative to other university students. DESIGN: A cross-sectional study of medical and chemical engineering students in different levels of their training programmes. Information about socio-demographic characteristics, BCG vaccination history, and potential exposures to TB were obtained using a standardised questionnaire. Tuberculin skin testing (TST) was used to determine the prevalence of infection with TB. RESULTS: Medical students have an increasing prevalence of TST positivity as they advance in their training programme to increasing levels of study (4.6%, 7.8%, 16.2%, respectively, P < 0.001), but chemical engineering students do not (4.2%, 4.3%, 4.4%, respectively, P = 0.913). The risks are greatest during the years of clinical training, when medical students have increased contact with patients. CONCLUSIONS: Medical students in this setting may be at increased risk of M. tuberculosis infection, relative to chemical engineering students. A programme of routine tuberculin skin testing is needed, combined with interventions to reduce the risk of nosocomial transmission in the workplace.

Adult↗

Evaluation of air pollution modelling tools as environmental engineering courseware.

The study of phenomena related to the dispersion of pollutants usually takes advantage of the use of mathematical models based on the description of the different processes involved. This educational approach is especially important in air pollution dispersion, when the processes follow a non-linear behaviour so it is difficult to understand the relationships between inputs and outputs, and in a 3D context where it becomes hard to analyze alphanumeric results. In this work, three different software tools, as computer solvers for typical air pollution dispersion phenomena, are presented. Each software tool developed to be implemented on PCs, follows approaches that represent three generations of programming languages (Fortran 77, VisualBasic and Java), applied over three different environments: MS-DOS, MS-Windows and the world wide web. The software tools were tested by students of environmental engineering (undergraduate) and chemical engineering (postgraduate), in order to evaluate the ability of these software tools to improve both theoretical and practical knowledge of the air pollution dispersion problem, and the impact of the different environment in the learning process in terms of content, ease of use and visualization of results.

Air Pollution↗

Automotive fuels and internal combustion engines: a chemical perspective.

Commercial transportation fuels are complex mixtures containing hundreds or thousands of chemical components, whose composition has evolved considerably during the past 100 years. In conjunction with concurrent engine advancements, automotive fuel composition has been fine-tuned to balance efficiency and power demands while minimizing emissions. Pollutant emissions from internal combustion engines (ICE), which arise from non-ideal combustion, have been dramatically reduced in the past four decades. Emissions depend both on the engine operating parameters (e.g. engine temperature, speed, load, A/F ratio, and spark timing) and the fuel. These emissions result from complex processes involving interactions between the fuel and engine parameters. Vehicle emissions are comprised of volatile organic compounds (VOCs), CO, nitrogen oxides (NO(x)), and particulate matter (PM). VOCs and NO(x) form photochemical smog in urban atmospheres, and CO and PM may have adverse health impacts. Engine hardware and operating conditions, after-treatment catalysts, and fuel composition all affect the amount and composition of emissions leaving the vehicle tailpipe. While engine and after-treatment effects are generally larger than fuel effects, engine and after-treatment hardware can require specific fuel properties. Consequently, the best prospects for achieving the highest efficiency and lowest emissions lie with optimizing the entire fuel-engine-after-treatment system. This review provides a chemical perspective on the production, combustion, and environmental aspects of automotive fuels. We hope this review will be of interest to workers in the fields of chemical kinetics, fluid dynamics of reacting flows, atmospheric chemistry, automotive catalysts, fuel science, and governmental regulations.

Journal Article↗

Nanoparticles of biodegradable polymers for new-concept chemotherapy.

The current regimen of chemotherapy is far from satisfactory--its efficiency is limited and patients suffer from serious side effects. Various drug delivery devices have been under intensive investigation in the past few decades in attempts to develop controlled and targeted methods of chemotherapy administration. This article reviews the latest developments in nanoparticles of biodegradable polymers for chemotherapy of cancer and other diseases such as cardiovascular restenosis. The preliminary results obtained in the author's laboratory are used to demonstrate the concept. This review is written with the belief that engineering, in particular, chemical engineering principles, can be applied and further developed to solve the problems in the current practice of chemotherapy and promote a new concept of chemotherapy - chemotherapy at home.

Absorbable Implants↗

[Pharmaceutical engineering in drug formulation].

The industrial pharmacist, a "pharmaceutical engineer"? The prospect is tempting if only beneficial to drug quality. The Pharmaceutical Engineering comes from Chemical Engineering and Engineer sciences and allows the pharmacist to achieve his aim. We define here the basis of this recent concept, its intervention and interest in the pharmaceutical sciences, more particularly in formulation.

Drug Compounding↗

BioMOL: a computer-assisted biological modeling tool for complex chemical mixtures and biological processes at the molecular level.

A chemical engineering approach for the rigorous construction, solution, and optimization of detailed kinetic models for biological processes is described. This modeling capability addresses the required technical components of detailed kinetic modeling, namely, the modeling of reactant structure and composition, the building of the reaction network, the organization of model parameters, the solution of the kinetic model, and the optimization of the model. Even though this modeling approach has enjoyed successful application in the petroleum industry, its application to biomedical research has just begun. We propose to expand the horizons on classic pharmacokinetics and physiologically based pharmacokinetics (PBPK), where human or animal bodies were often described by a few compartments, by integrating PBPK with reaction network modeling described in this article. If one draws a parallel between an oil refinery, where the application of this modeling approach has been very successful, and a human body, the individual processing units in the oil refinery may be considered equivalent to the vital organs of the human body. Even though the cell or organ may be much more complicated, the complex biochemical reaction networks in each organ may be similarly modeled and linked in much the same way as the modeling of the entire oil refinery through linkage of the individual processing units. The integrated chemical engineering software package described in this article, BioMOL, denotes the biological application of molecular-oriented lumping. BioMOL can build a detailed model in 1-1,000 CPU sec using standard desktop hardware. The models solve and optimize using standard and widely available hardware and software and can be presented in the context of a user-friendly interface. We believe this is an engineering tool with great promise in its application to complex biological reaction networks.

Animals↗