One possible molecule formed by photoionization is a molecular ion, such as H2+ (hydrogen ion). This process occurs when a molecule absorbs a photon with enough energy to remove an electron, resulting in the formation of a positively charged ion.
Rest implies stationary, equilibrium implies a resultant force of zero. Therefore, a body in equilibrium could be moving, for example a sky diver at terminal velocity, where resistive forces are equal to the force of gravity. This means that a body can be in equilibrium and not at rest, but a body at rest MUST be in equilibrium, otherwise it would move. So, to answer the question is: It's impossible.
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Oxygen is the molecule required for animal cells to obtain the most energy possible from a molecule of glucose through the process of cellular respiration. Oxygen is the final electron acceptor in the electron transport chain, which is essential for generating ATP, the cell's main energy source.
No, it cannot. It can only have atoms of oxygen in it.
To be permeable to gases & impermeable to liquids. To be as large as possible.
Evaporation from a sealed impermeable container is not possible.
yess
The smallest possible unit of a covalent compound is a molecule, which consists of two or more atoms held together by covalent bonds. Each molecule contains the specific arrangement of atoms that make up the compound.
There are two possible structures for a tetrahedral molecule with the formula AHXYZ. One structure is where the central atom (A) is in the center of the tetrahedron, and the other is where A occupies one of the vertices of the tetrahedron.
all reactions are equilibrium
No. For equilibrium, the SUM OF ALL FORCES acting on an object must be zero, and that is not possible with a single (non-zero) force.Note: For equilibrium, the sum of all torques on an object must ALSO be zero.
yes. Equilibrium can either be static i.e no movement or dynamic i.e movement is allowed. The main determining factor for equilibrium is that all forces acting at a point or points add up to zero.
Cationotropy refers to the ability of a molecule or ligand to change its coordination number around a central cation based on its chemical environment. This can lead to different possible coordination geometries for the cation depending on the molecules or ligands surrounding it.
It is how sellers determine the best possible price for their products for optimal profit.
The only possible answer is illness that leads to death.
Molecules can be at equilibrium across a biological membrane if their net movement is equal in both directions. However, they may not be at the same concentration on both sides due to factors such as active transport mechanisms, which can move molecules against their concentration gradient, creating an unequal distribution of the molecules.