Some things make heat. 
Scientists study how heat moves. 

Thermochemistry is the study of heat. It looks at how heat moves during changes. These changes can be chemical reactions. They can also be phase changes, like melting or boiling. 
Some changes release heat. We call these exothermic reactions. They give off heat to the surroundings. Other changes absorb heat. We call these endothermic reactions. They take heat in from the surroundings.
Scientists study a specific part of the world. They call this part a system. Everything else is the surroundings. A system can be open or closed. An open system can swap matter and energy. A closed system can swap energy but not matter.
How do we measure these heat changes? We use a tool called calorimetry. This uses a special chamber. Scientists watch the temperature inside the chamber. They use a thermometer to do this. 
In the winter of 1782, two men used an ice-calorimeter. Antoine Lavoisier and Pierre-Simon Laplace used it. They wanted to find the heat in chemical changes. This work helped start the field of thermochemistry.
Thermochemistry is the study of heat energy. It looks at energy during chemical reactions. It also looks at phase changes like melting or boiling. 
Heat moves in two main ways during these changes. Some reactions are exothermic. These reactions release heat to the surroundings. Other reactions are endothermic. These reactions absorb heat from the surroundings. 
People have studied these heat changes for a long time. Joseph Black introduced the idea of latent heat in 1761. He saw that heating ice did not raise its temperature at first. Instead, the heat caused the ice to melt. 
Scientists use special tools to measure these heat changes. This method is called calorimetry. 
Thermochemistry is part of a larger field called chemical thermodynamics. This broader field looks at all forms of energy exchange. It includes heat and also mechanical work. It even includes the exchange of matter. 
Thermochemistry is the study of heat energy in chemical reactions and phase changes. A phase change is a shift in state, like melting or boiling. This science tracks how heat moves between a system and its surroundings. A system is the specific part of the universe being studied. The surroundings are everything outside that system. Thermochemistry helps us predict how much of a reactant or product is made. It also helps determine if a reaction is spontaneous. A spontaneous reaction happens on its own, while a non-spontaneous reaction is unfavorable. 
Energy exchange happens in two primary ways. An exothermic reaction is one that releases heat to the surroundings. Conversely, an endothermic reaction is one that absorbs heat from its environment. When scientists consider all forms of energy, they use broader terms. They call these exergonic and endergonic reactions. Thermochemistry connects the concept of energy to the strength of chemical bonds. It also uses entropy determinations to predict reaction behavior. This allows scientists to understand the direction of energy flow.
Systems can be categorized by how they interact with their environment. An open system can exchange both matter and energy with the surroundings. A closed system can exchange energy, but it cannot exchange matter. Some systems are thermally isolated, meaning they exchange mechanical work but not heat or matter. A completely isolated system, like an insulated bomb calorimeter, exchanges neither energy nor matter. A mechanically isolated system can exchange heat but not mechanical work or matter. These different categories help scientists control the conditions of an experiment. 
Processes describe how the properties of a system change over time. An isothermal process occurs when the temperature remains constant. An isobaric process happens when the pressure stays the same. An adiabatic process is one where no heat exchange occurs between the system and surroundings. These processes relate to the changing state of the matter involved. Understanding these shifts is vital for calculating chemical changes. Scientists use these definitions to map out how energy moves during a reaction.
History shows how these ideas were built over many years. Joseph Black introduced the concept of latent heat in 1761. He noticed that heating ice at its melting point did not raise the temperature. Instead, the heat caused the ice to melt. In 1780, Lavoisier and Laplace established a law regarding energy changes. They found that energy changes are equal and opposite for reverse processes. In 1840, Hess discovered the law of constant heat summation. This law states that energy change is the same whether a process occurs in one step or many. 
Scientists measure these heat changes using a method called calorimetry. This process usually takes place inside an enclosed chamber. A thermometer or a thermocouple monitors the temperature inside the chamber. Scientists plot the temperature against time on a graph. This data allows them to calculate fundamental quantities like heat capacity. They also calculate the heat of combustion and the heat of formation. Modern tools include the differential scanning calorimeter. These devices provide a quick read-out of information for researchers.
Thermochemistry is a branch of chemical thermodynamics. This broader field deals with the exchange of all forms of energy. This includes heat, mechanical work, and the exchange of matter. Gustav Kirchhoff added to this field in 1858. He showed how the variation of the heat of reaction relates to heat capacity. This allows scientists to evaluate the heat of reaction at different temperatures. By using integration, they can move from one temperature measurement to another. This makes the science of energy much more precise and predictable. 
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