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  • The New Science Encyclopedia : Chemistry • Physics • Biology
    The New Science Encyclopedia : Chemistry • Physics • Biology


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  • Polymorphism in Molecular Crystals : Second Edition
    Polymorphism in Molecular Crystals : Second Edition

    Most people are familiar with the fact that diamond and graphite are both composed only of carbon; yet they have very different properties which result from the very different structures of the two solids - they are polymorphs of carbon.Understanding the relationship between the structures and the properties of materials is of fundamental importance in developing and producing new materials with improved or new properties.The existence of polymorphic systems allows the direct study of the connection between structures and properties.This book provides grounding on the fundamental structural and energetic basis for polymorphism, the preparation and characterization of polymorphic substances and its importance in the specific areas of pharmaceuticals, pigments and high energy (explosive) materials.The closing chapter describes the intellectual property implications and some of the precedent patent litigations in which polymorphism has played a central role.The book contains over 2500 references to provide a ready entry into the relevant literature.

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  • Discover Biology, Chemistry & Physics
    Discover Biology, Chemistry & Physics


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  • Plasma Science and Technology : Lectures in Physics, Chemistry, Biology, and Engineering
    Plasma Science and Technology : Lectures in Physics, Chemistry, Biology, and Engineering

    Plasma Science and Technology An accessible introduction to the fundamentals of plasma science and its applications In Plasma Science and Technology: Lectures in Physics, Chemistry, Biology, and Engineering, distinguished researcher Dr. Alexander Fridman delivers a comprehensive introduction to plasma technology, including fulsome descriptions of the fundamentals of plasmas and discharges.The author discusses a wide variety of practical applications of the technology to medicine, energy, catalysis, coatings, and more, emphasizing engineering and science fundamentals.Offering readers illuminating problems and concept questions to support understanding and self-study, the book also details organic and inorganic applications of plasma technologies, demonstrating its use in nature, in the lab, and in both novel and well-known applications.Readers will also find: A thorough introduction to the kinetics of excited atoms and molecules Comprehensive explorations of non-equilibrium atmospheric pressure cold discharges Practical discussions of plasma processing in microelectronics and other micro-technologies Expert treatments of plasma in environmental control technologies, including the cleaning of air, exhaust gases, water, and soil Perfect for students of chemical engineering, physics, and chemistry, Plasma Science and Technology will also benefit professionals working in these fields who seek a contemporary refresher in the fundamentals of plasma science and its applications.

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  • What is polymorphism in Java programming?

    Polymorphism in Java programming refers to the ability of a method to behave differently based on the object it is called on. This means that a single method can have different implementations depending on the type of object it is called on. This allows for more flexibility and reusability in code, as different objects can use the same method name but have different behaviors. Polymorphism is achieved through method overloading and method overriding in Java.

  • How is identification done after VNTR polymorphism?

    Identification after VNTR polymorphism is done by comparing the number of repeats in the variable number tandem repeats (VNTR) region of DNA between different individuals. This is typically done using a technique called polymerase chain reaction (PCR) to amplify the VNTR region, followed by gel electrophoresis to separate the DNA fragments based on size. The resulting pattern of DNA fragments, known as a DNA fingerprint, can then be compared between individuals to determine if they share a common genetic profile. This method is commonly used in forensic science and paternity testing to establish relationships between individuals based on their VNTR profiles.

  • What is polymorphism in object-oriented programming?

    Polymorphism in object-oriented programming refers to the ability of different objects to respond to the same message or method call in different ways. This means that objects of different classes can be treated as objects of a common superclass, allowing for more flexible and reusable code. Polymorphism allows for the implementation of methods that can work with objects of various types, making the code more adaptable and easier to maintain. This concept is a key feature of object-oriented programming and helps to promote code reusability and flexibility.

  • What is dynamic polymorphism in object-oriented programming?

    Dynamic polymorphism in object-oriented programming refers to the ability of a program to determine at runtime which method to invoke based on the actual type of object being referenced. This allows for flexibility and extensibility in the code, as different objects can exhibit different behaviors even if they belong to the same class hierarchy. Dynamic polymorphism is achieved through method overriding, where a subclass provides a specific implementation of a method defined in its superclass. This feature enables code reusability and promotes the principle of "write once, use many times" in object-oriented programming.

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  • Physics in Biology and Medicine
    Physics in Biology and Medicine

    **Selected for Doody’s Core Titles® 2024 in Medical Physics** Physics in Biology and Medicine, Sixth Edition includes new, revised material, and corresponding exercises on many exciting developments in the field.New sections cover biomechanics, biotribology, frictional properties of biological materials, 3-D printing and its use in medicine, new materials in dentistry, microfluidics, bioelectronic medicine, microsensors, and microscopy.This revised edition delivers helpful and engaging additions to the role and importance of physics in biology and medicine, including new coverage on metamaterials, metabolism, and environmental science.It is ideal for courses in biophysics, medical physics, and related subjects.

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  • Physics in Biology and Medicine
    Physics in Biology and Medicine

    A best-selling resource now in its fifth edition, Paul Davidovits’ Physics in Biology and Medicine provides a high-quality and highly relevant physics grounding for students working toward careers in the medical and related professions.The text does not assume a prior background in physics, but provides it as required.It discusses biological systems that can be analyzed quantitatively and demonstrates how advances in the life sciences have been aided by the knowledge of physical or engineering analysis techniques, with applications, practice, and illustrations throughout. Physics in Biology and Medicine, Fifth Edition, includes new material and corresponding exercises on many exciting developments in the field since the prior edition, including biomechanics of joint replacement; biotribology and frictional properties of biological materials such as saliva, hair, and skin; 3-D printing and its use in medicine; new materials in dentistry; microfluidics and its applications to medicine; health, fractals, and the second law of thermodynamics; bioelectronic medicine; microsensors in medicine; role of myelin in learning, cryoelectron microscopy; clinical uses of sound; health impact of nanoparticle in polluted air. This revised edition delivers a concise and engaging introduction to the role and importance of physics in biology and medicine.It is ideal for courses in biophysics, medical physics, and related subjects.

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  • GCSE Combined Science AQA Revision Question Cards: All-in-one Biology, Chemistry & Physics
    GCSE Combined Science AQA Revision Question Cards: All-in-one Biology, Chemistry & Physics

    If you want to really test your GCSE Combined Science knowledge, try CGP's massive box of Revision Question Cards!There are over 180 cards in the pack, covering all the key Biology, Chemistry and Physics topics from the Grade 9-1 AQA Trilogy course.Each card starts off with quick questions to warm you up, followed by harder questions to get your brain into top gear.Flip the card over and you’ll find full answers to each question, carefully written to help you understand everything you need to know.Along the way, we’ve packed in plenty of diagrams and expert revision tips, and there are even questions on Working Scientifically and Practical Skills.If you'd prefer we have AQA Combined Science Biology (9781789080551), Chemistry (9781789080568) and Physics (9781789080575) Cards in separate packs.

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  • The Great Mental Models: Physics, Chemistry and Biology
    The Great Mental Models: Physics, Chemistry and Biology

    A cult bestseller in the US, available around the world for the first time, The Great Mental Models introduces the simple tools we all need to see the world clearly. Time and time again, great thinkers like Warren Buffett and Charlie Munger have credited their success to mental models: simple representations of how the world works that can be applied in a wide array of contexts.Mastering a small number of these concepts enables you to rapidly grasp new information, identify patterns others don’t, and better anticipate outcomes. The Great Mental Models introduces the most powerful models that anyone can use right away to improve decision making and productivity.In this volume, Shane Parrish introduces mental tools borrowed from the hard sciences in language anyone can understand, including:Leverage: When the application of a small force to one end results in a larger force at the other end. Inertia: An object (or organization) at rest will stay at rest unless acted upon by an external force. Activation Energy: The minimum amount of energy required to incite a chemical reaction. Building a latticework of mental models is one of the most powerful things you can do to become a better thinker, leader, or creator.The Great Mental Models is the accessible guide you need to unlock this ability.

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  • What is the best natural science: Math, Physics, Biology, Chemistry, or Computer Science?

    It is subjective to determine the "best" natural science as each field has its own unique contributions to our understanding of the natural world. Math provides the foundation for understanding and solving problems in all the other sciences. Physics explores the fundamental laws of nature and the behavior of matter and energy. Biology studies living organisms and their interactions with the environment. Chemistry focuses on the composition, structure, and properties of matter. Computer Science deals with the theory and practice of computation and information. Each of these sciences is valuable in its own right and contributes to our understanding of the world around us.

  • What is the difference between polymorphism, allotropy, and pseudopolymorphism?

    Polymorphism refers to the ability of a substance to exist in different crystal structures or forms. Allotropy, on the other hand, specifically refers to the existence of an element in multiple different forms, each with its own unique physical properties. Pseudopolymorphism, also known as solvomorphism, occurs when a substance appears to have different crystal forms due to the presence of solvent molecules within its crystal lattice. In summary, while polymorphism and allotropy refer to the different forms of a substance, pseudopolymorphism involves the influence of solvent molecules on the crystal structure.

  • Which subject should be removed: Chemistry, Biology, Physics, or Computer Science?

    It is not advisable to remove any of these subjects as they all play a crucial role in providing a well-rounded education. Each subject offers unique perspectives and skills that are valuable for students' academic and professional development. Instead of removing a subject, it would be more beneficial to ensure that all students have access to a diverse range of subjects and resources to support their learning in each area.

  • What is the difference between inheritance and polymorphism in Java?

    Inheritance in Java allows a class to inherit properties and behaviors from another class, promoting code reusability. On the other hand, polymorphism allows objects of different classes to be treated as objects of a common superclass, enabling flexibility and extensibility in the code. Inheritance establishes an "is-a" relationship between classes, while polymorphism enables an object to take on multiple forms based on its context.

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