Periodic Table Trends (2024)

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We use the periodic table to help us recognize certain trends of physical and chemical properties of the elements. You need to memorize the trends. A trend is generally "it gets bigger" or "it gets smaller" sort of thing. All our trends describe the trend in two directions on the periodic table: 1) across a row, and 2) up and down a column. Here are the important ones for us.

Atomic Size

The smallest atom on the periodic table is helium, He, and has a radius of 31 pm. Yeah, He is even smaller than hydrogen, H, which is 53 pm. Which atom is the largest? That would be cesium, Cs, which comes in with a radius of 343 pm. So that is roughly a 10:1 ratio of largest to smallest. Sometimes we just do a generalized bit of rounding as well and say things like atoms range from about 50 pm to 300 pm which is more of a 6:1 ratio. Oh well, you should just wrap your head around the general range of all atomic sizes the extremes are 31 pm and 343 pm... so chopping that to 50-300 pm isn't a big deal.

Atoms get bigger as you go down a column on the periodic table. This is because in going down a column you are jumping up to the next higher main energy level (n) and each energy level is further out from the nucleus - that is, a bigger atomic radius.

Atoms get smaller as you go across a row from left to right. This may seem counterintuitive but it is the fact. The logic is that as you go across rows, you are staying in the same main energy level (n) so electrons are entering the atomic atmosphere at about the same distance. However, as you go across, the nuclei are getting more and more positive (more protons) - therefore there is more + to – attraction and the electron cloud is pulled in tighter and therefore a smaller radius.

So on any one row, the group 1 atoms (alkali metals) are the biggest on that row and the group 18 atoms (noble gases) are the smallest. Below is a simple graphic illustrating the atomic radii trends.

Monatomic Ion Size

Now that you have the trend for neutral atoms, let's modify or tweak those sizes for when the atom is changed into a cation or anion.

Cations: Metals tend to lose their electrons to make stable cations. The typical number is one to three electrons to make +1, +2, and +3 cations. Realize that when you make a cation from a monatomic neutral species, you are removing electrons from the outmost valence shell. Upon each e removal, there are fewer e repulsions which means the remaining electrons are pulled in tighter than before. This means that cations have smaller radii than the neutral atom from which they came from. And, each subsequent removal of additional electrons leads to smaller and smaller cation species. This is illustrated below starting on the left with a neutral atom.

Periodic Table Trends (2)

Anions: Non-metals tend to gain electrons to make stable anions. So in a likewise but opposite manner - we ADD electrons to the valence shell thus increasing electron repulsions which means the resulting anion is bigger than the atom from which they came. The more electrons you add, the bigger the anion gets. This is illustrated in the diagram below starting on the left with a neutral atom.

Periodic Table Trends (3)

Here's a figure from Wikipedia showing the neutral atomic radii vs the ionic radii sizes for some cations and anions.

Periodic Table Trends (4)

Ionization Energy (IE)

Ionization energy is the amount of energy it takes to remove one electron from a neutral atom (A) in order to form a +1 cation. The reaction (with energy shown) is

A + energy → A+ + e

The energy needed to do this must overcome the attraction of the outermost electron to the nucleus. All atoms have a wide variety of energies needed to do this, but they DO follow a trend that is easily seen on the periodic table. Much like all the trends, the two extremes of this property are at the bottom left (smallest IE) and the top right (largest IE). Going down a column, IE's decrease. Going across rows, IE's increase.

Electron Affinity (EA)

Electron affinity is the amount of energy released when one electron is added to a neutral atom (A) in order to form a –1 anion. The reaction (with energy shown) is

A + e → A + energy

You can think of EA as the "desire of an electron" by an atom. If the atom "wants" the electron a lot, then the EA is big. Less desire is smaller energy and there is even no desire and the numbers go to zero and even negative. The trends on the periodic table are not as pronounced as with other trends (they're a bit janky) - but in general, the upper right corner has the largest EAs while the lower left corner has the lowest values. I'm including this for the purpose of pointing out this is a real measurement and the recognition of EA is more important for our studies than the actual values. Move on to electronegativity now.

Electronegativity (EN)

Electronegativity is a relative scale from zero to four that measures the "desire" or "pull" on electron pairs. Electronegativity is the purposeful human friendly scale from 0 to 4 that electron affinity lacked. The maximum of 4.0 on this scale belongs to fluorine (top right). The minimum of 0.8 on this scale belongs to cesium (bottom left). Think of EN as the "pull" on electron pairs in a molecule by an atom. We use it the most of the three trends/properties last listed. And yes, we ignore the noble gases for EN values because they are happy as is - they have no desire for any shared electrons and they don't form bonds, so no values for them.

Periodic Table Trends (5)

We will rarely need the actual numbers for electronegativity. Just knowing approximately which elements are the most electronegative (upper right corner) helps us in recognizing and assigning polarity of bonds and ultimately compounds. The non-metals tend to be at or above 2.0 on the scale which means they "want" electrons far more than all the metals which tend to all be less than 2.0 on the scale. Go to Wikipedia or other online resources if you want the actual numbers for electronegativity.

Summary of ALL Trends

Below is an illustration showing how the extremes of all properties (trends) are in the same two regions.

Periodic Table Trends (6)

I will always "ignore" the last row of elements when talking trends. Why?

Many students ask me, "Why did you say cesium is the largest atom instead of francium?". Well, pretty much that entire 7th row of elements are very radioactive. Francium's most stable isotope has a half-life of only 22 minutes. So it doesn't really stick around long enough to really even do any real chemistry. So when I talk about trends, the "extreme" in the bottom left corner is cesium.

Just remember this: when you hear about "general chemistry" or "principles of chemistry", there is a hidden prepositional phrase at the end of that. That phrase is "of the stable elements". So yes, 99% of the time when discussing chemistry of the elements and their trends, only the non-radioactive/stable elements are relevant. IF you study nuclear chemistry in a class, then yes, all those unstable atoms are relevant again. WE are not doing nuclear chemistry in this class or book.

One more thing in the upper right corner... the trends of electron affinity and electronegativity are only relevant to elements that actually react in chemical reactions. So that is why fluorine (not helium or neon) wins the "extreme" trend in the upper right corner of the periodic table with those properties. FYI - helium does win in the ionization energy contest (and smallest atom) because that is the energy to remove an electron - helium is definitely the toughest element to remove an electron from. The other noble gases are very stingy as well.

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© 2019-2022 · mccord

Periodic Table Trends (2024)

FAQs

Periodic Table Trends? ›

Periodic trends are patterns in elements on the periodic table. Major trends are electronegativity, ionization energy, electron affinity, atomic radius, and metallic character.

What are the 4 trends of the periodic table? ›

Major periodic trends include: electronegativity, ionization energy, electron affinity, atomic radius, melting point, and metallic character. Periodic trends, arising from the arrangement of the periodic table, provide chemists with an invaluable tool to quickly predict an element's properties.

What are the periodic trends in order? ›

Trend-wise, while moving from left to right across a period, the number of valence electrons of elements increases and varies between one and eight. But the valency of elements first increases from 1 to 4, and then it decreases to 0 as we reach the noble gases.

How to remember periodic table trends? ›

One helpful method is to remember the acronym " SNAF " which stands for " Same , Negative , Across , and Forward . " This refers to the fact that as you move from left to right across a period , the elements have the same number of valence electrons , the electronegativity increases , the atomic radius decreases , and ...

What are the trends in the periodic table groups vs periods? ›

The periodic table is organized into groups (vertical columns), periods (horizontal rows), and families (groups of elements that are similar). Elements in the same group have the same number of valence electrons. Meanwhile, elements in the same period have the same number of occupied electron shells.

What are the 5 periodic trends explained? ›

Major trends are electronegativity, ionization energy, electron affinity, atomic radius, and metallic character. The existence of these trends is due to the similarity in atomic structure of the elements in their group families or periods and because of the periodic nature of elements.

What are the trends in Period 3 elements? ›

Going across Period 3, there are more protons in each nucleus so the nuclear charge in each element increases. Therefore the force of attraction between the nucleus and outer electron is increased, and there is a negligible increase in shielding because each successive electron enters the same energy level.

What is the trend in size of the periodic table? ›

In the periodic table, atomic radii decrease from left to right across a row and increase from top to bottom down a column. Because of these two trends, the largest atoms are found in the lower left corner of the periodic table, and the smallest are found in the upper right corner (Figure 7.6.

What is the trend of reactivity on the periodic table? ›

Metal reactivity decreases from left to right across periods and increases down groups. nonmetallic characteristics increases from left to right and decreases down groups. Nonmetal reactivity increases from left to right and decreases down groups.

What are the 7 periodic properties? ›

Periodic Properties of the Elements
  • Atomic Radius.
  • Ionization Energy (ionization potential)
  • Electron Affinity.
  • Electronegativity.
  • Metallic Character.
  • Other Trends.
  • Redox Potentials. Oxidation Potential. Reduction Potential.
  • Uses in knowing the Periodic Properties of Elements.
Jun 30, 2023

What is the easy trick to learn periodic table? ›

Mnemonics for Periodic Table in English
Groups/PeriodsMnemonics for Periodic Table in English
Group 1Highly Naive Kids Rub Cat's Fur
Group 2Beena (and) Meghna Came Straight Back Rapidly
Group 13B A G I T
Group 14Cute Sisters Get Small (TINy) Problems
9 more rows
Mar 30, 2022

How to explain trends in chemistry? ›

A trend is observed, as elements further right a period and higher up a group have an increased electron affinity. This is seen as the electrons that form the negative ions are added to the outer electron shell, causing an increased attraction between the electrons and the nucleus.

How to teach periodic table trends? ›

Trends related to placement of elements on the periodic table are often taught using diagrams in a textbook. Students often memorize trends, but to get a true grasp of their meaning and what causes certain patterns is best understood when students create their own models and discuss the patterns with others.

What are the trends across a period? ›

Across a period from left to right, the covalent radius decreases. As you move from left to right across the periodic table, atoms have more electrons in their outer energy level and more protons in their nucleus.

How to understand periodic table? ›

On the periodic table, elements are listed in order of increasing atomic number. Elements in the same row are in the same period. This means they have similar physical properties, such as how well they bend or conduct electricity. Elements in the same column are in the same group.

How are elements arranged on the periodic table? ›

The chemical elements are arranged in order of increasing atomic number. The horizontal rows are called periods and the vertical columns are called groups. Elements in the same group have similar chemical properties. This is because they have the same number of outer electrons and the same valency.

What are the trends in group 4 of the periodic table? ›

Elements become progressively more metallic down the column. Carbon is especially in its diamond and polyhedral forms is a typical non-metal, silicon is a semiconductor, and tin & lead are typical metals. Although tin has one modification (grey tin) which is isostructural with Ge, Si, and diamond.

What are the elements in the 4th period of the periodic table? ›

The elements of Period 4 are Potassium (K), Calcium (Ca), Scandium (Sc), Titanium (Ti), Vanadium (V), Chromium (Cr), Manganese (Mn), Iron (Fe), Cobalt (Co), Nickel (Ni), Copper (Cu), Zinc (Zn), Gallium (Ga), Germanium (Ge), Arsenic (As), Selenium (Se), Bromine (Br), and Krypton (Kr).

What are the periodic table column trends? ›

Going up or down a column, elements are organized into groups which have similar chemical properties. Moving left or right within a row, the atoms trend smaller or larger in size, and their reactivities go up and down.

What are the trends in the periodic table of a level chemistry? ›

Group trend

Atomic radius increases down a group. This is because the number of electron shells increases down a group. Each subsequent electron shell is further from the nucleus. This effect outweighs the increase in proton number down the group.

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