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McChesney, Elizabeth M.; Nicholas, Brett – ALA Editions, 2020
Laying the groundwork for building children's curiosity, openness to learning, ability to persist in the face of failure, and interest in connecting learning from one subject to the other are important objectives for today's libraries. Partnering with cultural institutions, such as the Chicago Public Library (CPL) does with Chicago's Museum of…
Descriptors: STEM Education, Reading Instruction, Active Learning, Learning Activities
Watanabe-Crockett, Lee – Solution Tree, 2018
When educators embrace student-centered learning, classrooms transform, authentic learning comes alive, and outcomes improve. A culmination of Lee Watanabe-Crockett's ten-plus years of work with schools around the world, "Future-Focused Learning" details ten core shifts of practice--along with simple microshifts--you can use with your…
Descriptors: Student Centered Learning, Critical Thinking, Educational Change, 21st Century Skills
Smart, Julie – Redleaf Press, 2017
Learn to use inquiry-based practice to inspire young minds through science. This book gives educators a solid guide for using research-based principles of inquiry to help children explore their world. With real-life examples and information on facilitating and guiding children, you will be able to engage and maximize STEM learning. Web content and…
Descriptors: Book Reviews, Active Learning, Inquiry, STEM Education
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Barth, Katie; Bahr, Damon; Shumway, Steven – Science and Children, 2017
Across the United States, political leaders, educators, and business persons are issuing an urgent call for reform in STEM education (NGSS Lead States 2013). One important response to this call is Integrated STEM, which the National Governor's Association (2007, p. 7) says involves, "... an emphasis on design and problem solving in…
Descriptors: STEM Education, Science Instruction, Water, Interdisciplinary Approach
Tobin, William; Feit, Valerie – Teachers College Press, 2020
New research points to the future of education as online, student-centered, collaborative, and community-based--all largely absent from today's educational landscape. This timely guide shows middle, high school, and college students how to undertake research to address challenges in their curriculum and communities. The approach is deliberately…
Descriptors: Student Research, Community Change, Ethics, Problem Solving
Johnson, Carla C., Ed.; Walton, Janet B., Ed.; Peters-Burton, Erin E., Ed. – NSTA Press, 2019
What if you could challenge your 11th graders to figure out the best response to a partial meltdown at a nuclear reactor in fictional Gammatown, USA? With this volume in the "STEM Road Map Curriculum Series," you can! "Radioactivity" outlines a journey that will steer your students toward authentic problem solving while…
Descriptors: Grade 11, High School Students, STEM Education, Nuclear Energy
Johnson, Carla C., Ed.; Walton, Janet B., Ed.; Peters-Burton, Erin E., Ed. – NSTA Press, 2019
What if you could challenge your second graders to design an outdoor STEM classroom with a butterfly garden, birdbath, and sundial? With this volume in the "STEM Road Map Curriculum Series," you can! "Investigating Environmental Changes" outlines a journey that will steer your students toward authentic problem solving while…
Descriptors: STEM Education, Elementary School Students, Teaching Methods, Outdoor Education
Johnson, Carla C., Ed.; Walton, Janet B., Ed.; Peters-Burton, Erin E., Ed. – NSTA Press, 2018
What if you could challenge your 12th graders to understand car crashes in the context of physical forces, manufacturing challenges, government safety standards, and individual rights? With this volume in the "STEM Road Map Curriculum Series," you can! "Car Crashes" outlines a journey that will steer your students toward…
Descriptors: STEM Education, High School Students, Physics, Mathematics Instruction
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Wheeler, Lindsay B.; Whitworth, Brooke A.; Gonczi, Amanda L. – Science Teacher, 2014
The number of students majoring in science, technology, engineering, and math (STEM) is declining due in part to a lack of student interest (Fairweather 2008; NRC 2012; PCAST 2010). One reason may be the difference between how science is done in school and how it is done in the field (Osborne, Simon, and Collins 2003). An interdisciplinary…
Descriptors: Engineering Technology, Student Interests, Science Interests, STEM Education