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What if we could capture carbon emissions at low cost, using a common polymer found in dinnerware and utensils? Researchers at UC Berkeley and Stanford have developed a method for using melamine to capture carbon dioxide from smokestacks and vehicle exhaust, with efficiency comparable to more expensive materials. This breakthrough could help achieve net-zero carbon emissions by 2050, and the researchers are exploring ways to improve the carbon capture efficiency even further.
The world's shift towards electric vehicles to reduce greenhouse gas emissions will require a huge demand for critical metals like lithium, nickel, cobalt, manganese, and platinum. This demand will have economic and supply-chain consequences, according to new research from Cornell University. Discover how countries can manage this demand and promote a circular economy for critical metals.
Batteries are a crucial part of our modern lives, powering everything from our smartphones to our cars. But the production and disposal of batteries have significant environmental impacts, from toxic chemicals and heavy metals to greenhouse gas emissions. Fortunately, there are sustainable options and alternatives to batteries that can help mitigate these negative effects. One such option is kinetic energy, which converts motion into electricity. For example, the piezoelectric effect harnesses energy from pressure, while the triboelectric effect converts friction into electricity. Another alternative to batteries is supercapacitors, which store energy in an electric field rather than a chemical reaction. They charge and discharge quickly and have a longer lifespan than traditional batteries. These sustainable options and alternatives to batteries are being researched and developed by leading academics in the field of materials science and engineering. Dr. Jennifer Lewis, a professor of biologically inspired engineering at Harvard University, is leading a team that is working on creating 3D-printed energy storage devices using a hydrogel-based ink. Meanwhile, Dr. Yi Cui at Stanford University is researching how to improve the energy density and safety of solid-state batteries. By exploring academic topics like materials science and engineering, students can learn about the properties of different materials and how they can be manipulated to create sustainable technologies. You can also learn about the environmental impact of technology and how sustainable alternatives can mitigate these effects. In conclusion, sustainable alternatives to batteries offer exciting opportunities for innovation and environmental sustainability. By exploring academic topics related to these technologies, high school students can gain a deeper understanding of the scientific principles behind sustainable energy and contribute to a more sustainable future.
Are you interested in using your creativity and problem-solving skills to make a positive impact on the world? Then a career in chemical engineering might be right up your alley! Chemical engineering is a field that combines knowledge of chemistry, physics, and mathematics to design and develop new products and processes. As a chemical engineer, you could work in a variety of industries, including pharmaceuticals, energy, food and beverage, and more. For example, you might work on developing new medicines to treat diseases, or on designing more efficient and sustainable ways to produce energy. One exciting aspect of chemical engineering is the potential for innovation and discovery. For example, chemical engineers have been instrumental in developing new materials like graphene, which has the potential to revolutionize industries from electronics to transportation. In terms of day-to-day duties, chemical engineers might be involved in everything from designing experiments and analyzing data to overseeing production processes and troubleshooting problems that arise. There are also many areas of specialization within the field, such as materials science, process design, and environmental engineering. To become a chemical engineer, you'll typically need to earn a bachelor's degree in chemical engineering or a related field. Some popular undergraduate programs include the chemical engineering programs at MIT, UC Berkeley, and the University of Texas at Austin. In addition to technical knowledge, there are a few personal attributes that can be helpful in a career in chemical engineering. These include strong problem-solving skills, attention to detail, and the ability to communicate complex ideas clearly and effectively. As for job prospects, chemical engineering is a field with plenty of opportunities for growth and advancement. Some notable employers include companies like Procter & Gamble, ExxonMobil, and DuPont, as well as government agencies like the Environmental Protection Agency and the Department of Energy. In conclusion, if you're interested in using your scientific knowledge to make a difference in the world, a career in chemical engineering might be the perfect fit for you. With plenty of opportunities for innovation and growth, this field offers the chance to make a real impact on society and the environment. So why not explore this exciting career path today?
Researchers have powered a microprocessor for a year using blue-green algae and ambient light! This system, comparable in size to an AA battery, has the potential to be a reliable and renewable way to power small devices. The growing Internet of Things needs power, and this system generates energy instead of simply storing it like batteries. The algae system is made of common and recyclable materials, making it easily replicable.
"Rocks are becoming rocks again!" says chemist Peter Psarras from the Clean Energy Conversions Lab (CECL) at the University of Pennsylvania. Psarras and his team are turning waste from industrial mines into magnesium carbonate through a carbon-neutral and inexpensive process, with the goal of storing CO2. With five partner mines, the CECL lab, funded by the Kleinman Center for Energy Policy and the School of Engineering and Applied Science, is exploring the environmental potential of mine tailings and determining the scalability of the carbonation process. Join Psarras and the CECL in their mission to tap into the "moved mountain" of waste and be inspired by their cutting-edge technology.
Perovskite solar cells are a game-changer in the world of renewable energy. These cells are made from a material called perovskite, which is a type of mineral that can be easily manufactured and is highly efficient at converting sunlight into electricity. Did you know that perovskite solar cells have been shown to be more efficient at converting sunlight into electricity compared to traditional silicon solar cells? In just a few short years, the efficiency of perovskite solar cells has increased from just 3.8% to over 25%! This rapid improvement is thanks to the work of leading academics in the field, including Professor Henry Snaith of the University of Oxford, who was one of the first researchers to demonstrate the potential of perovskite solar cells. Not only are perovskite solar cells more efficient, they are also much cheaper to produce than traditional silicon solar cells. This means that they have the potential to make renewable energy more accessible to people all over the world. So what makes perovskite solar cells so special? It all comes down to their unique structure. Unlike silicon solar cells, which have a rigid structure, perovskite solar cells have a flexible structure that allows them to absorb more light. This flexibility also means that they can be made into different shapes and sizes, making them easier to integrate into a variety of applications, from rooftop solar panels to portable solar chargers. In conclusion, perovskite solar cells are a promising technology that has the potential to revolutionize the renewable energy industry. With their high efficiency and low cost of production, they are poised to make a significant impact on the world's energy supply and help to combat climate change. Whether you are interested in science, engineering, or the environment, there is something for everyone in the world of perovskite solar cells. So why not take a closer look and discover the possibilities for yourself?
The future of resource extraction lies in space exploration. Asteroids, leftovers from the formation of the planet 4.5 billion years ago, contain rare and precious materials such as platinum, iron, and nickel. The mining industry on Earth is harmful to the environment and people, but space mining could provide a clean and sustainable alternative. Cheaper space travel is necessary to make asteroid mining profitable, and scientists and economists are working on solutions such as electric spaceships. Once a stable asteroid is secured, space mining and processing equipment can extract valuable materials through a process that uses giant mirrors to focus sunlight and heat up asteroid rock. Even a small percentage of a single asteroid's mass in precious metals could be worth billions of dollars. The benefits of space exploration and asteroid mining are vast, and the possibilities for discovery and innovation are endless.
Mining has been a crucial part of human civilization for centuries, providing us with the resources we need to build, create and thrive. But with this extraction comes consequences, particularly in the form of mine tailings. Mine tailings are the waste materials left over after the ore has been extracted, and they can have significant impacts on the environment, particularly with regards to climate change. To understand the impact of mine tailings, it's important to first understand the science behind mining. When ore is extracted, the minerals are separated from the rest of the material, leaving behind a mixture of minerals, water, and other substances. This mixture is called tailings, and it can contain harmful chemicals, such as heavy metals, that can leach into the environment. Leading academics in the field, such as Dr. Sara Colombo and Dr. Jian Kang, have studied the environmental impact of mine tailings and have found that they can lead to soil and water pollution, as well as contribute to greenhouse gas emissions. For example, Dr. Colombo's research has shown that tailings dams can release large amounts of methane, a potent greenhouse gas, into the atmosphere. These impacts are a concern for many communities, as well as for the planet as a whole. But despite this, there is hope for a more sustainable future. Researchers like Dr. Jian Kang are working to develop new technologies that can reduce the environmental impact of mine tailings, such as using them as a source of energy instead of just waste.
"Reverse Ocean Acidification: A Solution to Our Carbon Dioxide Problem?" - As carbon dioxide emissions continue to threaten our planet, researchers at MIT may have found an innovative way to remove the gas from ocean water in a cost-effective and efficient manner. The versatility of their membrane-free electrochemical cell process could even lead to overall net negative emissions, reversing ocean acidification caused by carbon dioxide buildup.
Scientists at SLAC and Stanford have found a way to generate low-carbon fuel from seawater by extracting hydrogen through a double-membrane system and electricity. Their innovative design could help advance efforts to produce clean energy and store energy for weeks, months or longer for electric grids. The study also provided a better understanding of how seawater ions move through membranes, which could help scientists design stronger membranes for other applications.
Teflon, a material that doesn't stick to anything, was stumbled upon accidentally in 1938 by a chemist named Roy Plunkett. Teflon's properties make it perfect for things that need to be slippery, chemical-resistant, or waterproof, which means it has a lot of applications. It can be found all over the place, from raincoats to industrial ball bearings to artificial joints. The incredible properties of PTFE, the chemical name for Teflon, come from its molecular structure. It's a polymer, meaning it's made of long chains of repeating units of atoms strung together. PTFE has tight carbon-fluorine bonds that ignore the normal, intermolecular forces that help substances stick to each other. Even the famously adhesive feet of geckos usually can't get a grip on it. Learning about the properties of materials like Teflon can inspire independent exploration of science and engineering, which can lead to exciting career opportunities in fields like materials science and chemical engineering.
Are you fascinated by the design and construction of towering skyscrapers, magnificent bridges, and sprawling road networks? Do you want to be a part of the team that creates the infrastructure that shapes our world? If so, then studying Civil Engineering at the undergraduate level might be the perfect fit for you! Civil Engineering is a field of study that involves the design, construction, and maintenance of the built environment. This includes everything from buildings and bridges to roads and water systems. Civil Engineers use their technical skills and creativity to solve complex problems and create structures that are safe, efficient, and sustainable. In recent years, there have been several exciting innovations in the field of Civil Engineering. For example, researchers have developed new materials that are stronger and more durable than ever before. They have also used cutting-edge technology like drones and 3D printing to improve the efficiency of construction projects. Some of the most inspiring academic figures in the field include Dr. Henry Petroski, who has written extensively on the history of engineering failures, and Dr. Linda Hanagan, who is a leading expert on sustainable infrastructure. At the undergraduate level, students in Civil Engineering typically take courses in subjects like structural analysis, geotechnical engineering, and transportation planning. They may also have the opportunity to specialize in areas like environmental engineering or construction management. Some exciting examples of real-life Civil Engineering projects include the construction of the Burj Khalifa in Dubai, the Panama Canal expansion, and the redevelopment of the World Trade Center site in New York City. After graduation, there are a wide range of potential career paths for Civil Engineers. They may work for government agencies, construction firms, or consulting firms. Some popular industries for prospective employment include transportation, energy, and water resources. Notable potential employers include the US Army Corps of Engineers, Bechtel Corporation, and Arup Group. Other careers that may be relevant to Civil Engineering include architecture, urban planning, and environmental science. To succeed in this field of study, it is helpful to have strong math and science skills, as well as an interest in problem-solving and design. Effective communication and teamwork skills are also essential, as Civil Engineers often work on projects with large, interdisciplinary teams. If you're ready to take on the challenge of creating the infrastructure of the future, then studying Civil Engineering may be the perfect choice for you!
Glass is a material that we use every day, but have you ever wondered how it works? Glass is made from silicon dioxide, which is heated until it becomes a flowing liquid. As it cools, the molecules lose energy and become an amorphous solid, allowing light to pass through without being scattered. The subatomic level of glass is what makes it transparent, as the electrons in glass are spaced far enough apart that visible light can't provide enough energy for them to jump between them. This unique property has made glass an essential material for many uses, from windows to lenses. Understanding the science behind glass can help you appreciate the importance of this material in modern civilization.
The world is constantly changing, and as high school students, it is essential to be aware of the problems that need solutions. Vinisha Umashankar, a 14-year-old from India, noticed the pollution caused by charcoal usage in the metal irons of street vendors and decided to take action. She designed an ironing cart powered by solar energy, eliminating the use of charcoal, deforestation, air pollution, and respiratory diseases caused by the traditional method. Learning about solar energy and sustainable solutions like Vinisha's can benefit you not only intellectually but practically as well. By exploring these concepts further, you can contribute to creating a better world for yourself and the generations to come.
New research shows that the cost of annual flooding in the UK could increase by up to 23% over the next century due to climate change, unless all international pledges to reduce carbon emissions are met. The study, led by the University of Bristol and Fathom, highlights the need for urgent action to mitigate the impact of climate change on the risk of flooding across the UK. The research also identifies the areas of the UK where risks will increase the most, including densely populated cities such as London, Cardiff, Manchester, Glasgow, and Edinburgh.
Plastics have become ubiquitous in our daily lives, but few of us know the history behind this versatile material. The first plastic was created in 1863 by an American named John Wesley Hyatt, who invented celluloid, made from cellulose found in wood and straw. This discovery led to a cascade of new plastics, including bakelite, polystyrene, polyvinyl chloride, acrylics, and nylon. Plastics have replaced other materials like wood, glass, and fabric in furniture, clothing, and packaging. While plastics have brought convenience and cost-effectiveness, they have also created staggering environmental problems. Many plastics are made of nonrenewable resources, and plastic packaging was designed to be single-use, but some plastics take centuries to decompose, creating a huge buildup of waste. By learning about plastics, students can understand how science and innovation have shaped our world, and they can explore ways to address the environmental problems associated with plastic use.
Traditional diamond mining is a billion-dollar industry with significant environmental impact, releasing large amounts of carbon emissions and causing damage to local ecosystems worldwide. However, carbon-negative diamonds are produced through a process that actually captures carbon emissions from the atmosphere, making them a much more sustainable alternative for the jewellery industry. Aether Diamonds, a major player in this industry, uses direct-capture technology for diamond production in a two-step process. First, a reactor is used to extract the carbon dioxide from the atmosphere, while this raw carbon material is placed in another reactor that kickstarts the diamond-growing process. The resulting diamonds are visually indistinguishable from traditionally-mined diamonds and have the same physical and chemical properties, but have been produced with a much lower carbon footprint. This ingenious solution reimagines existing carbon-capture services, where firms are paid by various multinational corporations to capture their carbon emissions, by recycling this extracted carbon dioxide for an inventive purpose. By eliminating 20 tons of carbon dioxide for every 1-carat diamond produced, each diamond can actively contribute to carbon emission reduction efforts. Beyond the jewelry industry, researchers have used a similar process to produce important industrial materials from carbon. Dr. Stuart Licht, a chemistry professor at George Washington University, is a leading academic in this field of renewable technology. His patented technology, the Solar Thermal Electrochemical Photo (STEP) energy conversion, captures carbon dioxide using renewable solar energy to create carbon nanofibers. This material provides a lighter and stronger alternative to metals like steel, and is used in luxury sports cars, aeroplanes like the Boeing Dreamliner, and high-end athletic equipment. These creative uses of carbon-capture technology offer a promising future, especially with carbon-negative diamonds for the sustainable fashion industry. Beyond that, these diamonds also offer a more ethical alternative — sustainable diamond production avoids the international human rights abuses and violence that traditional diamond mining has been linked to. All in all, carbon-negative diamonds have the potential to revolutionize the sustainable fashion industry and beyond, and are a fascinating scientific innovation with many exciting future implications.
Are you fascinated by the Earth's natural wonders and the forces that shape our planet? Do you enjoy problem-solving and critical thinking? If so, then Geological Engineering might be the perfect field of study for you! Geological Engineering is a branch of engineering that focuses on the study of the Earth's materials, structures, and processes. This interdisciplinary field combines elements of geology, engineering, and mathematics to solve complex problems related to the Earth's resources, natural hazards, and environmental sustainability. One of the most exciting aspects of Geological Engineering is its real-world applications. From designing safe and efficient mines to mitigating the impact of natural disasters, Geological Engineers play a crucial role in shaping our world. For example, Geological Engineers are involved in the construction of tunnels and dams, the exploration and extraction of oil and gas reserves, and the development of renewable energy sources such as geothermal and hydroelectric power. Geological Engineering is also a field of constant innovation and discovery. Recent research has focused on developing new methods for detecting and monitoring earthquakes, predicting volcanic eruptions, and understanding the long-term effects of climate change on the Earth's geology. Some of the most well-known academic figures in this field include Charles Darwin, who studied geology during his voyage on the HMS Beagle, and Marie Tharp, who created the first comprehensive map of the ocean floor. At the undergraduate level, students in Geological Engineering typically take courses in geology, physics, chemistry, and mathematics, as well as specialized courses in topics such as mineralogy, petrology, and structural geology. Students may also have the opportunity to participate in fieldwork and research projects, gaining hands-on experience in the field. After graduation, there are a wide range of potential career paths for Geological Engineers. Some may choose to work in the mining industry, designing and managing mining operations around the world. Others may work in environmental consulting, helping to assess the impact of human activities on the Earth's natural systems. Still others may work in government agencies, such as the United States Geological Survey or the National Oceanic and Atmospheric Administration, where they can contribute to important research and policy decisions. To succeed in Geological Engineering, students should have a strong foundation in mathematics and science, as well as excellent critical thinking and problem-solving skills. A passion for the Earth's natural systems and a desire to make a positive impact on the world are also important qualities for success in this field. So if you're ready to explore the fascinating world of Geological Engineering, start researching universities and programs today! With a degree in this field, you'll be well-prepared for a rewarding and impactful career in a variety of industries around the world.
MIT engineers have developed ultralight fabric solar cells that can quickly and easily turn any surface into a power source. These durable, flexible solar cells are much thinner than a human hair and can be glued to a strong, lightweight fabric, making them easy to install on a fixed surface. They can be integrated onto the sails of a boat, adhered onto tents and tarps in disaster recovery operations, or applied onto the wings of drones to extend their flying range. This groundbreaking technology generates 18 times more power-per-kilogram than conventional solar panels, making it a promising solution to the present urgent need to deploy new carbon-free sources of energy.
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