Principles of Biochemistry Chapter 2 Water – Flashcards

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water is a ________ molecule
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polar; contains a positive and negative end
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in water, oxygen has a slightly ________ charge
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negative
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in water, hydrogen has a slightly ________ charge
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positive
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one water molecule can bind with ______ other water molecules at the same time
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4
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cohesion
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Attraction between molecules of the same substance
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cohesion is made possible due to
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hydrogen bonds
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adhesion
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An attraction between molecules of different substances
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adhesion is made possible due to
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hydrogen bonds that bind to electronegative Os
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surface tension
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linking together of water molecules on the surface of a body of water
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surface tension is made possible due to
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hydrogen bonds
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heat
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total amount of kinetic energy
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temperature
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intensity of all the heat in a substance as the molecules move
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water's ability to regulate temperature is due to
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hydrogen bonds
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evaporative cooling
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The property of a liquid whereby the surface becomes cooler during evaporation, owing to a loss of highly kinetic molecules to the gaseous state.
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water __________ when it freezes
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expands
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four properties of water
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1. cohesion/adhesion 2. evaporative cooling 3. temperature regulation 4. water expands when it freezes
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solvent
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A liquid substance capable of dissolving other substances
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universal solvent
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water
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solute
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A substance that is dissolved in a solution.
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solution
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A mixture in which one or more substances are evenly distributed in another substance
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hydration shell
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The sphere of water molecules around each dissolved ion
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water can not grab and dissolve ________ molecules
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non-polar (oils, grease, fats)
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hydrophobic
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"water fearing"
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hydrophilic
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"Water loving"
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dissociation
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splitting of water into H+ (proton) and an OH- (hydroxide ion)
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acid
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substance gives away H+
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base
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substance gives away OH-
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pH scale
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measurement system used to indicate the concentration of hydrogen ions (H+) in solution; ranges from 0 to 14 pH =(-)logH+. A log scale.
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buffer
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A solution that resists changes in pH when limited amounts of acid or base are added.
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biocarbonate
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buffer found in human blood; keeps blood at a pH of 7.4
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acid precipitation
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Rain, snow, or fog that is more acidic than pH 5.6.
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causes of acid precipitation
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burning of fossil fuels; sulfur oxide and nitrous oxide combine with water
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what bond makes water possible
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polar covalent
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what bond provides the properties of water
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hydrogen
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adhesion of water
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the water is attracted to the glass
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cohesion of water
cohesion of water
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water molecules are attracted to each other and form droplets
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example of hydration shell
example of hydration shell
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the water molecules surround the molecules
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surface tension of water
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Water molecules want to cling to each other. At the surface, however, there are fewer water molecules to cling to since there is air above (thus, no water molecules). This results in a stronger bond between those molecules that actually do come in contact with one another, and a layer of strongly bonded water. This surface layer creates a considerable barrier between the atmosphere and the water.
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hydrogen acceptor
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atom, ion, or molecule component of a hydrogen bond which does not supply the bridging (shared) hydrogen atom Ie O or N
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hydrogen donor
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the Hydrogen atoms that are ATTACHED to the electronegative atom (O N or F)
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Hydrogen bonds
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The two strands of a DNA double helix are held together by _____ that form between pairs of nitrogenous bases.
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dielectric constant
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Solvent polarity is a measure of solvent ability to separate opposite charges, which is expressed as _________. (E)
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cathrate
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shell created around nonpolar substance by polar substances, decreases entropy
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ampipathic
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Both hydrophobic and hydrophilic
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micelles
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-consist of bile salts, fatty acids, monoglycerides and phospholipids all clustered together with the polar ends of each molecule oriented towards the micelle's surface and the nonpolar portions forming the core.
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van der waals interactions
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weak attractions between molecules or parts of molecules that result from transient local partial charges
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proton hopping
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Hydrogen bonded networks form natural chains for rapid proton transfer. Covalent and hydrogen bonds are interchangeable. Much faster than true diffusion, and results in extremely fast acid-base rxns.
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colligative
colligative
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a property that is determined by the number of particles present in a system but that is independent of the properties of the particles themselves
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osmotic pressure
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pressure that must be applied to prevent osmotic movement across a selectively permeable membrane when solutes are in water solution.
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equilibrium constant
equilibrium constant
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a ratio of products formed at equilibrium to reactants formed at equilibrium. Products/Reactants
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titration curve
titration curve
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a graph of pH of a solution as titrant is added, expressed by a weak acid proton donor dissociates to become its conjugate base a proton acceptor. CH3COOH --> CH3COO- + H+. At equilibrium pKa = pH because changes in H+ concentration are buffered and line is stable.
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Henderson Hasselbach
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pH= pKa + log (base(A-)/acid(HA))
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condensation reaction
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A reaction in which two molecules become covalently bonded to each other through the loss of a small molecule, usually water; also called dehydration reaction.
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Hydrolysis reaction
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this is when water (H2O) is added to a substance in order to break it up into smaller molecules. You can identify this as having a H2O reactant.
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specific heat of water
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High compared to other substances. Allows Earth's large bodies of water to store heat and not be changed by small temp increases. Acts as a buffer. 1 Joule(Calorie) of heat energy needed to raise 1 Gram, 1 Degree higher.
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Kw = [H+][OH-] = 1x10^-14
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Ion product of H2O
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pH of a solution
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pH = -log_10[H+]
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Logarithmic functions are closely related to exponential equations
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log_b (x) = y says the same thing as b^y = x.
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