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Marine chemistry

physical science Maturity 9-11

Scientists study the ocean water.

HMS Challenger (1858).jpg
HMS Challenger (1858).jpg
They look at what is in it. They see things like salt and food. This helps us keep the sea safe. It is a big job. Do you like the sea?

39 words

Scientists study the ocean water.

HMS Challenger (1858).jpg
HMS Challenger (1858).jpg
They look at what is in it. They see salt and food.
Forms of organic matter.webp
Forms of organic matter.webp
Tiny bits of food sink to the bottom. This helps move food to the deep sea. Some living things live in very hot spots.
Deep Sea Vent Chemistry Diagram.svg
Deep Sea Vent Chemistry Diagram.svg
These spots are near vents on the sea floor. People work to keep the water clean. It is a big job to help our seas.

74 words

Marine chemistry is the study of ocean water.

HMS Challenger (1858).jpg
HMS Challenger (1858).jpg
Scientists look at the chemicals in the sea. They study how the water works with the air and the seafloor. They also look at how living things use these chemicals.

There are many types of organic matter in the ocean.

Forms of organic matter.webp
Forms of organic matter.webp
This is matter made by living things. Some of it is tiny and stays dissolved in the water. We call this dissolved organic matter. Other parts are larger. These are called particulate organic matter.
Forms of organic matter.webp
Forms of organic matter.webp
These large bits sink toward the deep sea. This helps move carbon to the bottom.

Some animals live in very tough places. These are called extremophiles.

Deep Sea Vent Chemistry Diagram.svg
Deep Sea Vent Chemistry Diagram.svg
They can live in very hot or very cold spots. Some live near hydrothermal vents. These are cracks in the seafloor that let out hot chemicals. Instead of using sunlight, some tiny life forms use these chemicals for power. This is called chemoautotrophy.
Deep Sea Vent Chemistry Diagram.svg
Deep Sea Vent Chemistry Diagram.svg
Scientists use special tools to study these areas. They even use robots called autonomous underwater vehicles.
Coast Guard deploys Autonomous Underwater Vehicle for Arctic science mission 140820-G-ZR723-001.jpg
Coast Guard deploys Autonomous Underwater Vehicle for Arctic science mission 140820-G-ZR723-001.jpg
These help them see what is happening deep underwater.

200 words

Marine chemistry is the study of the chemicals in our oceans.

HMS Challenger (1858).jpg
HMS Challenger (1858).jpg
Scientists look at how seawater works with the air and the seafloor. They also study how living things interact with these chemicals. This field helps us understand how the whole planet stays in balance. It looks at how elements like carbon and nitrogen move through the water. Understanding these cycles is a very important job for our world.
Forms of organic matter.webp
Forms of organic matter.webp

There are two main ways organic matter moves through the sea. First, there is dissolved organic matter, which is tiny and stays in the water. This includes things like sugars and amino acids. It makes up about 90% of the total organic carbon in the ocean. Second, there is particulate organic matter, which consists of larger pieces.

Forms of organic matter.webp
Forms of organic matter.webp
These larger bits, like tiny organisms, sink toward the deep sea. This movement is called the biological pump. It carries carbon from the surface down to the bottom.

Some life forms live in very strange places called extreme environments.

Deep Sea Vent Chemistry Diagram.svg
Deep Sea Vent Chemistry Diagram.svg
These organisms are known as extremophiles. Some live near hydrothermal vents on the dark seafloor. Instead of using sunlight, they use a process called chemoautotrophy. This means they get energy from chemicals like sulfur or methane.
Deep Sea Vent Chemistry Diagram.svg
Deep Sea Vent Chemistry Diagram.svg
Other extremophiles live in freezing sea ice. They must survive very salty water inside tiny pockets of ice. These amazing creatures show how life can find a way anywhere.

People have been studying the ocean for a long time.

HMS Challenger (1858).jpg
HMS Challenger (1858).jpg
The famous Challenger expedition happened between 1872 and 1876. It was the first time scientists made systematic measurements of ocean chemistry. Later, a scientist named Martin Knudsen made a tool called the Knudsen Bottle. This helped experts collect water from different depths. In recent years, we have used new technology to help us.
Coast Guard deploys Autonomous Underwater Vehicle for Arctic science mission 140820-G-ZR723-001.jpg
Coast Guard deploys Autonomous Underwater Vehicle for Arctic science mission 140820-G-ZR723-001.jpg
We now use robots called autonomous underwater vehicles to explore.

Today, marine chemistry helps us see how humans change the sea.

MgCaRatioChanges.jpg
MgCaRatioChanges.jpg
Burning fossil fuels adds more carbon dioxide to the air. This causes ocean acidification, which can hurt marine life. Scientists also watch how seafloor spreading changes the water. For example, spreading rates at mid-ocean ridges change the ratio of magnesium to calcium.
MgCaRatioChanges.jpg
MgCaRatioChanges.jpg
This can even change how creatures build their skeletons. By studying these changes, we can work to protect our oceans for the future.

408 words

Marine chemistry, also known as chemical oceanography, is the study of the chemical composition of the world's oceans.

HMS Challenger (1858).jpg
HMS Challenger (1858).jpg
It examines how seawater interacts with the atmosphere, the seafloor, and marine organisms. This field is vital for understanding global biogeochemical cycles and ocean circulation. Scientists study how elements like carbon, nitrogen, and phosphorus move through these systems. This research helps us understand the effects of human activities like pollution and climate change. By studying these chemical processes, we can better understand the health of our entire planet.

One major focus of marine chemistry is the movement of organic matter. Dissolved Organic Matter, or DOM, is a critical part of the ocean's carbon pool. It includes molecules such as amino acids, sugars, and lipids. DOM represents about 90% of the total organic carbon in marine environments. A specific type, called Colored Dissolved Organic Matter (CDOM), makes up 20% to 70% of the ocean's carbon.

Forms of organic matter.webp
Forms of organic matter.webp
CDOM levels are higher near river outlets and lower in the open ocean. Some DOM resists degradation and can stay in the ocean for centuries, helping regulate carbon storage.

Another important component is Particulate Organic Matter, or POM. POM consists of larger organic particles like organisms, fecal pellets, and detritus. These particles settle through the water column in a process called the biological pump.

Forms of organic matter.webp
Forms of organic matter.webp
This pump transfers carbon from the surface ocean down to the deep sea. As POM sinks, bacteria decompose it, which releases nutrients and carbon dioxide. Some refractory POM reaches the ocean floor. This material can contribute to carbon sequestration over very long periods of time.

In extreme environments, life relies on unique chemical processes. Extremophiles are organisms that thrive in extreme temperature, pressure, or light conditions.

Deep Sea Vent Chemistry Diagram.svg
Deep Sea Vent Chemistry Diagram.svg
Near hydrothermal vents, many organisms use chemoautotrophy to survive. Instead of using sunlight, they use chemical compounds as energy sources. These vents enrich the water with chemicals like elemental sulfur, hydrogen, and methane. Primary producers, mostly prokaryotes, derive energy from these chemicals through redox reactions. This creates a food source for other living things in these deep-sea ecosystems.

Different metabolic pathways exist even in these harsh habitats. Some microorganisms, such as Thiomicrospira, oxidize sulfur compounds to gain energy.

Deep Sea Vent Chemistry Diagram.svg
Deep Sea Vent Chemistry Diagram.svg
In colder waters, they use oxygen as an electron acceptor. Closer to the vents, they might use nitrate instead. Other microbes perform iron-oxidation, using Fe(II) as an electron donor. This process is part of the iron-redox cycle. In sea ice, other extremophiles live in brine pockets. These pockets can have salinity up to three times higher than regular seawater. Because these organisms are often photosynthetic, they must produce antioxidants to survive hyperoxic conditions.

Geological processes also change ocean chemistry through seafloor spreading. At mid-ocean ridges, hydrothermal vents introduce iron, sulfur, and manganese into the ocean.

MgCaRatioChanges.jpg
MgCaRatioChanges.jpg
The rate of spreading affects the magnesium to calcium (Mg/Ca) ratio in the water. Rapid spreading rates, between 10 and 200 mm/yr, increase basalt reactions with seawater. This removes more magnesium and releases more calcium, resulting in a lower Mg/Ca ratio. A lower ratio favors the formation of calcite seas. Conversely, slow spreading leads to higher Mg/Ca ratios and aragonite seas. This chemical environment even regulates how reef-building organisms construct their skeletons.

Human activities are significantly altering these natural chemical balances. The burning of fossil fuels increases atmospheric carbon dioxide levels. This leads to ocean acidification, which can harm marine ecosystems.

MgCaRatioChanges.jpg
MgCaRatioChanges.jpg
Industrial pollution and land-use practices also impact ocean chemistry. Because of these changes, the international community has made restoring ocean chemistry a priority. This effort is tracked through Sustainable Development Goal 14. Scientists use many tools to monitor these shifts, including pH meters and dissolved CO2 meters.

Modern oceanographers use advanced technology to collect data.

Coast Guard deploys Autonomous Underwater Vehicle for Arctic science mission 140820-G-ZR723-001.jpg
Coast Guard deploys Autonomous Underwater Vehicle for Arctic science mission 140820-G-ZR723-001.jpg
They use CTD instruments to measure conductivity, temperature, and pressure. Autonomous Underwater Vehicles (AUVs) allow for continuous, large-scale monitoring of the ocean.
Coast Guard deploys Autonomous Underwater Vehicle for Arctic science mission 140820-G-ZR723-001.jpg
Coast Guard deploys Autonomous Underwater Vehicle for Arctic science mission 140820-G-ZR723-001.jpg
Researchers also use mass spectrometers to detect trace elements and isotopes. These tools help us understand the complex connections between the ocean, the atmosphere, and life on Earth.

698 words
🖼️ Images & Media (5)
Forms of organic matter.webp
File:Deep_Sea_Vent_Chemistry_Diagram.svg
Deep_Sea_Vent_Chemistry_Diagram.svg
File:MgCaRatioChanges.jpg
MgCaRatioChanges.jpg
File:HMS Challenger (1858).jpg
HMS Challenger (1858).jpg
File:Coast Guard deploys Autonomous Underwater Vehicle for Arctic science mission 140820-G-ZR723-001.jpg
Coast Guard deploys Autonomous Underwater...
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