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Books > Science & Mathematics > Science: general issues > Scientific equipment & techniques, laboratory equipment
Information literacy-the ability to find, evaluate, and use information resources-is an important skill for future chemists. Students and scientists need to distinguish between information provided by Wikipedia, ChemSpider, research journals, and The New York Times, depending on the intended use of the information sought. Instructors and librarians may often teach these skills through stand-alone database demonstrations, video tutorials, and lectures. However, it is possible to teach these skills in a more contextual and integrated manner by designing chemistry assignments that incorporate information literacy as a learning outcome. This book will prove useful for librarians and chemistry instructors who are designing courses in which students develop information literacy in the context of a chemistry course at two-year colleges, public and private universities, and high schools. The chapters in this book review the current state of information literacy in chemistry and provide concrete examples of assignments and interventions aimed at teaching information literacy skills in chemistry curricula. A wide range of options are offered for integrating information literacy into college-level chemistry courses, including general chemistry, organic chemistry, science courses for students not majoring in science, and chemistry capstone research courses.
Work with individual atoms and molecules aims to demonstrate
that miniaturized electronic, optical, magnetic, and mechanical
devices can operate ultimately even at the level of a single atom
or molecule. As such, atomic and molecular manipulation has played
an emblematic role in the development of the field of nanoscience.
New methods based on the use of the scanning tunnelling microscope
(STM) have been developed to characterize and manipulate all the
degrees of freedom of individual atoms and molecules with an
unprecedented precision. In the meantime, new concepts have emerged
to design molecules and substrates having specific optical,
mechanical and electronic functions, thus opening the way to the
fabrication of real nano-machines. Manipulation of individual atoms
and molecules has also opened up completely new areas of research
and knowledge, raising fundamental questions of "Optics at the
atomic scale," "Mechanics at the atomic scale," Electronics at the
atomic scale," "Quantum physics at the atomic scale," and
"Chemistry at the atomic scale." This book aims to illustrate the
main aspects of this ongoing scientific adventure and to anticipate
the major challenges for the future in "Atomic and molecular
manipulation" from fundamental knowledge to the fabrication of
atomic-scale devices.
Compelling evidence exists to support the hypothesis that both
formal and informal mentoring practices that provide access to
information and resources are effective in promoting career
advancement, especially for women. Such associations provide
opportunities to improve the status, effectiveness, and visibility
of a faculty member via introductions to new colleagues, knowledge
of information about the organizational system, and awareness of
innovative projects and new challenges.
Collaborations between scientists often transcend borders and cultural differences. The fundamental nature of science allows scientists to communicate using knowledge of their field but the institutions that support them are often hindered by financial and cultural barriers. As a result, science suffers. This book evolved from an August 2009 symposium at the 238th annual meeting of the American Chemical Society in Washington, DC. Its focus is on chemistry students and professors interested in developing a global approach to teaching chemistry, by participating in an international exchange program or incorporating culturally inclusive techniques into their classroom. The book has three broad themes; education research with a globalized perspective, experiences of teaching and learning in different countries, and organizations that support a global view of chemical education and chemistry.
This is the first book to bring together both the basic theory and proven process engineering practice of AFM. It is presented in a way that is accessible and valuable to practising engineers as well as to those who are improving their AFM skills and knowledge, and to researchers who are developing new products and solutions using AFM. The book takes a rigorous and practical approach that ensures it
is directly applicable to process engineering problems.
Fundamentals and techniques are concisely described, while specific
benefits for process engineering are clearly defined and
illustrated. Key content includes: particle-particle, and
particle-bubble interactions; characterization of membrane
surfaces; the development of fouling resistant membranes; nanoscale
pharmaceutical analysis; nanoengineering for cellular sensing;
polymers on surfaces; micro and nanoscale rheometry.
This book brings together the latest perspectives and ideas on teaching modern physical chemistry. It includes perspectives from experienced and well-known physical chemists, a thorough review of the education literature pertaining to physical chemistry, a thorough review of advances in undergraduate laboratory experiments from the past decade, in-depth descriptions of using computers to aid student learning, and innovative ideas for teaching the fundamentals of physical chemistry. This book will provide valuable insight and information to all teachers of physical chemistry.
New Publication! Based on years of experience and prior publications, the NEW two-volume book, STEM RESEARCH for STUDENTS, is a vital resource for K-12 teachers, higher education faculty, and their students. In Volume Two, students build upon a strong foundation to create original STEM projects: Brainstorm ideas for projects; Analyze and address the safety risks involved in a project; Use the library and Web to expand understanding and develop a valid idea; Conduct a group mini-project which involves readily-available materials in the classroom, on a field site, or at a community location. Use algebra to represent patterns and develop mathematical models; Use statistics to detect the significance of relationships; and Communicate project findings through formal papers, visual presentations, and interactions with peers or judges. STEM Research for Students, Volume 2 is: Student friendly! Each chapter is carefully sequenced and contains a variety of formative assessment tools. Key definitions are included in an appendix. Essential foundational knowledge from Volume 1 is clearly referenced. STEM encompassing! Students have multiple opportunities to make connections by applying information from the various chapters to original projects. Teacher enhanced! Each chapter contains learning objectives and assessment tools checklists or rubrics. Answers to the practice sets are available on a secure Kendall Hunt web site. Standards aligned! All chapters are aligned with the Next Generation Science Standards, Common Core Standards for Mathematics and Literacy in Science and Technical Subjects, and the International Standards for Technology in Education Standards for Students. Available in print and e-Book formats, STEM Research for Students, Volume 2, may be used: As a supplemental text in middle school, high school, and introductory college courses; As core text for research classes and STEM clubs where students are ready to engage in group or individual projects: For pre-service and in-service teachers of science, mathematics, career and technical courses, and gifted students; As a resource for all teachers involved with experiments, engineering designs, mathematical investigations, and competitive STEM projects. The companion volume, STEM Research for Students, Volume 1, is a resource for students to acquire or strengthen the foundational knowledge necessary to engage in an original project.
New Publication! Based on years of experience and prior publications, the NEW two-volume book, STEM RESEARCH for STUDENTS, is a vital resource for K-12 teachers, higher education faculty, and their students. In Volume One, students acquire the fundamentals and apply them to their investigations: Conduct experiments and refine the design and procedures; Construct data tables and graphs, use descriptive statistics, and make sense of an experiment; Meet a human need by designing, building, and testing a model; Communicate findings through reports and interactions with peers; Apply mathematical concepts to data including ratio and proportional relationships, geometry and measurement, algebra, and statistics. STEM Research for Students, Volume 1, is: Student friendly! Chapters contain investigations with readily available materials, explanations of major concepts, practice sets, and formative assessment tools. Use as a sequence or as individual units of study for specific content. STEM encompassing! For each core experiment, students have multiple options for making connections to various scientific disciplines, engineering, and mathematics. Teacher enhanced! Each chapter contains learning objectives and assessment tools checklists or rubrics. Answers to the practice sets are available on a secure Kendall Hunt web site. Standards aligned! All chapters are aligned with the Next Generation Science Standards, Common Core Standards for Mathematics and Literacy in Science and Technical Subjects, and the International Standards for Technology in Education Standards for Students. Available in print and e-Book formats, STEM Research for Students, Volume 1, may be used: As a supplemental text in upper elementary, middle, and senior high classrooms; As a core text for introductory research courses and STEM research clubs; For pre-service and in-service teachers of science, mathematics, career and technical courses, and gifted students; As a resource for all teachers involved with experiments, engineering designs, mathematical investigations, and competitive STEM projects. The companion volume, STEM Research for Students, Volume 2 enables students to build upon this strong foundation and create effective science experiments, engineering designs, and mathematical investigations.
The detection and measurement of the dynamic interactions of
proteins within the living cell are critical to our understanding
of cell physiology and pathophysiology. With FRET microscopy and
spectroscopy techniques, basic and clinical scientists can make
such measurements at very high spatial and temporal resolution. But
sources of background information about these tools are very
limited, so this book fills an important gap. It covers both the
basic concepts and theory behind the various FRET microscopy and
spectroscopy techniques, and the practical aspects of using the
techniques and analyzing the results. The critical tricks for
obtaining a good FRET image and precisely quantitating the signals
from living specimens at the nanomolecular level are explained.
Valuable information about the preparation of biological samples
used for FRET image analysis is also provided.
This is the fifth volume of "Advances in Sonochemistry" the first
having been published in 1990. The definition of sonochemistry has
developed to include not only the ways in which ultrsound has been
harnessed to effect chemistry but also its uses in material
processing. Subjects included range from chemical dosimetry to
ultrasound in microbiology to ultrasound in the extraction of plant
materials and in leather technology.
Though many separation processes are available for use in todays analytical laboratory, chromatographic methods are the most widely used. The applications of chromatography have grown explosively in the last four decades, owing to the development of new techniques and to the expanding need of scientists for better methods of separating complex mixtures. With its comprehensive, unified approach, this book will greatly assist the novice in need of a reference to chromatographic techniques, as well as the specialist suddenly faced with the need to switch from one technique to another.
This book is meant to be a companion volume for the ACS Symposium Series Book entitled Nuts and Bolts of Chemical Education Research. In the Nuts and Bolts book (edited by Diane M. Bunce and Renee Cole), readers were presented with information on how to conduct quality chemical education research. In the Myth book, exemplars of chemical education research are featured. In the cases where the chapter in the book is describing research that has already been published (typically in the Journal of Chemical Education), additional information is provided either in terms of research questions investigated that were not reported in the published article or background information on decisions made in the research that helped the investigation. The main focus of this type of discussion is to engage the reader in the reality of doing chemical education research including a discussion of the authors' motivation. It is expected that these two books could be used as textbooks for graduate chemical education courses showing how to do chemical education research and then providing examples of quality research.
Investigators who have identified and cloned a gene of interest often want to isolate and characterize the protein product, yet the methods required are no-toriously tricky for the inexperienced. For the past four years, a course has been held at Cold Spring Harbor Laboratory to teach scientists how to execute the major protein techniques by applying them to four distinct, representative types of molecule: a regulatory protein, a DNA-binding protein, a recombinant protein, and a membrane-bound receptor. This course has now been adapted in the form of a laboratory manual that covers a variety of bulk fractionation, electrophoretic, and chromatographic techniques. Step-by-step protocols are accompanied by troubleshooting advice and guidance on generalizing the techniques for other classes and types of protein. The emphasis throughout is on strategies for purification and characterization rather than automated instrumental analysis. After years of rigorous testing, these techniques are robust and reliable, and are presented here with the clarity and completeness for which Cold Spring Harbor manuals are celebrated. The book is invaluable for specialists in genetics, microbiology, neuroscience, and cell biology who wish to develop expertise in working with proteins.
Inspired by the opportunities and challenges presented by rapid advances in the fields of retrieval of chemical and other scientific information, several speakers presented at a symposium, The History of the Future of Chemical Information, on Aug. 20, 2012, at the 244th Meeting of the American Chemical Society in Philadelphia, PA. Storage and retrieval is of undeniable value to the conduct of chemical research. The participants believe that past practices in this field have not only contributed to the increasingly rapid evolution of the field but continue to do so, hence the somewhat unusual title. Even with archival access to several of the presentations, a number of the presenters felt that broader access to this information is of value. Thus, the presenters decided to create an ACS Symposium book based on the topic, with the conviction that it would be valuable to chemists of all disciplines. The past is a moving target depending on the vagaries of technology, economics, politics and how researchers and professionals choose to build on it. The aim of The History of the Future of Chemical Information is to critically examine trajectories in chemistry, information and communication as determined by the authors in the light of current and possible future practices of the chemical information profession. Along with some additional areas primarily related to present and future directions, this collection contains most of the topics covered in the meeting symposium. Most of the original authors agreed to write chapters for this book. Much of the historical and even current material is scattered throughout the literature so the authors strived to gather this information into a discrete source. Faced with the rapid evolution of such aspects as mobile access to information, cloud computing, and public resource production, this book will be not only of interest but provide valuable insight to this rapidly evolving field, both to practitioners within the field of chemical information and chemists everywhere whose need for current and accurate information on chemistry and related fields is increasingly important.
Students taught with inquiry-based methods have been shown to make significant progress in their ability to formulate hypotheses, make proper assumptions, design and execute investigations, understand variables, record data, and synthesize new knowledge. are taught with it. This text presents a series of experiments that are intended to serve as the solid basis for a first-year chemistry or physical sciences course, using an inquiry based approach. Each provides: 1)instructions for an experiment; 2) in-depth teachers notes and 3) a sample lab report.
Tools of Chemistry Education Research meets the current need for information on more in-depth resources for those interested in doing chemistry education research. Renowned chemists Diane M. Bunce and Renee S. Cole present this volume as a continuation of the dialogue started in their previous work, Nuts and Bolts of Chemical Education Research. With both volumes, new and experienced researchers will now have a place to start as they consider new research projects in chemistry education. Tools of Chemistry Education Research brings together a group of talented researchers to share their insights and expertise with the broader community. The volume features the contributions of both early career and more established chemistry education researchers, so as to promote the growth and expansion of chemistry education. Drawing on the expertise and insights of junior faculty and more experienced researchers, each author offers unique insights that promise to benefit other practitioners in chemistry education research.
The interactions of microbes with surfaces are important to many
natural and engineered processes, affecting a wide range of
applications from decontamination of surfaces or drinking water,
prevention of microbial colonization of biomaterials, and bacterial
processes in the environment. Therefore, there is great interest in
understanding the fundamental behavior of microbes at surfaces.
Topics are included that address interactions of cells with a
number of surfaces for antifouling and microbial cell-based sensor
applications; mechanistic studies of antimicrobial peptides and
quorum sensing; exploration of experimental and theoretical models
of a cell surface; cell surface display of peptides and enzymes as
biofabrication techniques; the fate and transport of bacteria in
the natural environment, as well as new experimental tools or
modeling techniques to study interactions at the microbial
surface.
The book gives an overview of the current state-of-the-art
concerning the activation and dissolution of cellulose in a broad
variety of solvents. Research on this topic can lead to new
pathways for the utilization of the most abundant terrestrial
biomolecule and may therefore be the basis for new green strategies
towards advanced materials. Leading scientists in the field show
different conceptions for the solubilization of cellulose. The long
history and groundbreaking developments in the field of polymer
chemistry, which are related to this subject, have lead to timely
alternatives to already established methods. In addition to
discussing attempts for the optimization of known dissolving
procedures, this book also details new solvent systems. New
solvents include inorganic and organic salt melts (ionic liquids),
new aqueous media, multi-component organic solvents and the
dissolution under partial derivatization of the polysaccharide. The
opportunities and the limitations of the solvents are demonstrated,
with a particular emphasis on the stability of the solutions and a
possible recycling of the solvent components.
An ideal - and affordable - text for engineers and maintenance professionals with an interest in vibration monitoring. This title does not attempt to baffle with the technology, but introduces it at an understandable level, touching on the basic theory and concepts, available equipment and practical issues relevant to the engineer as well as highlighting several case studies with which the reader can relate. Other books in this series focus on corrosion, vibration, thermography, noise, ultrasonics and acoustic emission, level, leakage and flow, oil analysis, load monitoring and a superb Concise Encyclopaedia that includes introductory notes on all of the above techiques as well as others.
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