Introductory physics for the life sciences /

"Key features: Organised and centred around analysis techniques, not traditional Mechanics and E&M. Presents a unified approach, in a different order, meaning that the same laboratories, equipment, and demonstrations can be used when teaching the course. Demonstrates to students that the analysis an...

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Detalhes bibliográficos
Main Authors: Mochrie, Simon (Author), De Grandi, Claudia (Author)
Formato: Livro
Idioma:inglês
Publicado em: New Haven, CT, USA Springer 2023
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MARC

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245 1 0 |a Introductory physics for the life sciences /  |c by Simon Mochrie and Claudia De Grandi 
260 |a New Haven, CT, USA  |b Springer  |c 2023 
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300 |a xxiv, 847 p 
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504 |a Includes bibliographical references and index. 
505 0 |a v. 1. Mechanics -- v. 2. Quantity-based analysis. 
520 |a "Key features: Organised and centred around analysis techniques, not traditional Mechanics and E&M. Presents a unified approach, in a different order, meaning that the same laboratories, equipment, and demonstrations can be used when teaching the course. Demonstrates to students that the analysis and concepts they are learning are critical to the understanding of biological systems. This textbook provides an accessible introduction to physics for undergraduate students in the life sciences, including those majoring in all branches of biology, biochemistry, and psychology and students working on pre-professional programs such as pre-medical, pre-dental, and physical therapy. The text is geared for the algebra-based physics course, often named College Physics in the United States. The order of topics studied in this volume require students to first understand a concept, such as the conservation of energy, momentum, voltage, or current, the change in a quantity such as entropy, or the rules of ray and wave optics. Then students apply these concepts to solve problems in the areas of Thermodynamics, Electrical Circuit, Optics, and Atomic and Nuclear Physics. Throughout the text these quantity-based applications are used to understand systems that are critical to the understanding of biological systems, such as the entropy of evolution, the signal down the axon of a nerve cell, the optics of the eye, and the operation of a laser. "--  |c Provided by publisher. 
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