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Science Final Exam Review 25/26

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Science Final Exam Review 25/26

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Science Final Exam Review 25/26
 

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Science Final Exam Review 25/26Online version

energy and matter basics

by Murphy Lambrakis
1

A ( n ) is the smallest unit of matter that has the properties of its element .

2

is the study of matter and the changes in matter .

3

matter has mass and volume ( takes up ) .

4

energy naturally flows from warmer to cooler matter , this is what we know as heat or heat flow .

5

A of iron and sulfur can be separated by magnets .

6

A special form of homogeneous mixture that is composed of evenly distributed solute particles in a solvent is called a ( n ) .

7

A substance is a single kind of matter that has a specific

8

A ( n ) is the smallest part of a substance .

9

An object that floats on water has a less than 1 - g / mL .

10

The amount of space that matter fills is its .

11

A state of matter with a definite volume , but no definite shape is a ( n ) .

12

A ( n ) will always take the shape and volume of its container .

13

The is a measure of the average speed of the particles in a substance .

14

A ( n ) has a definite volume and a definite shape .

15

The of a gas is represented by the formula f / A , where f = force pushing on the walls of a container and A = area of the walls of the container .

16

A ( n ) has neither a definite volume nor a definite shape .

17

is the inward force among the molecules of a liquid .

18

A ( n ) solid has a definite melting point .

19

A ( n ) solid has a melting point range .

20

Both gases and liquids are .

21

occurs when the particles of a liquid lose enough energy to take fixed positions .

22

The process that makes ice cubes shrink as they sit in a freezer is called .

23

The process where bromine gas touches a surface and becomes crystals is called .

24

Particles of a gas have the greatest energy .

25

Glass is an example of a ( n ) solid .

26

and both happen at the surface of a substance .

27

is the reverse process of condensation .

28

The at which a liquid turns to a solid is called its freezing point .

29

( or fusion ) is the reverse process of freezing .

30

Water particles in gas coming off a pan of boiling water are moving than the particles of water in the pan .

31

Boiling and evaporation are both forms of .

32

occurs at any temperature when a liquid becomes a gas on the surface of a substance .

33

occurs at a specific temperature when a liquid becomes a gas beneath and on the surface of a substance .

34

is the process by which a liquid becomes a gas , it is endothermic .

35

is the process by which a liquid becomes a gas both in and at the surface of a liquid , it is endothermic .

36

is the process by which a liquid becomes a gas only at the surface of a liquid , it is endothermic .

37

is the process by which a solid becomes a gas without becoming a liquid , it is endothermic .

38

is the process by which a gas becomes a solid without becoming liquid , it is exothermic .

39

is the process by which a gas becomes a liquid , it is exothermic .

40

is the process by which a solid becomes a liquid , it is endothermic .

41

Freezing is the process by which a liquid becomes a , it is exothermic .

42

Energy is the total energy of the motion of the particles in a substance .

43

is a measure of the average energy of the motion of the particles in a substance .

44

is the thermal energy flow ( when released the environment temperature increases , or when absorbed the environment temperature decreases ) when matter changes phase or state .

45

is the change in which energy is absorbed ( the environment loses energy and becomes cooler ) .

46

is the change in which energy is released ( the environment gains energy and becomes warmer ) .

47

is the temperature at which a liquid starts to become a gas ( 100°C for water ) , it is unique for every substance .

48

is the temperature at which a solid begins to become a liquid ( 0°C for water , it is unique for every substance ) .

49

Point is the temperature at which a gas begins to become a liquid , it is the same temperature as the boiling point .

50

is the temperature at which a liquid begins to become a solid , it is the same temperature as the melting point .

51

Solids are solids in which particles are not arranged in a regular pattern .

52

Solids are solids in which particles are arranged in a regular pattern called a crystal lattice .

53

are substance that flow , they include liquids and gases .

54

is the force per unit area , it ? s an outward push divided by the area of the walls of the container , it is measured in pascals .

55

is the inward force in a liquid that brings molecules on the surface closer together and allows them to remain together , an example is water piling up on a penny and not flowing off the edges .

56

As a result of Rutherford ? s gold foil experiment scientists inferred that an atom ? s charge must be concentrated in the of the atom .

57

Mendeleev created the first by arranging elements in order of increasing atomic .

58

The atomic number of an element is the number of in its nucleus .

59

You can predict an element ? s based on its location on the periodic table .

60

Metals are , , and can carry an .

61

The two most common alkaline earth metals are and .

62

At room temperature , more than half of the elements are gases .

63

The elements that do not react to form compounds under normal conditions are the Noble .

64

radiation consists of particles that are identical to electrons .

65

Measurements of half - life make radioactive isotopes useful for determining the ages of and .

66

The elements in the same column ( or group or family ) on the periodic table have similar .

67

The most reactive metals on the periodic table are found in group one , periods - which are the metals .

68

Most elements on the periodic table are classified as .

69

A material that is can be pulled or drawn into a long wire .

70

In an atom , the number of protons and electrons are .

71

Elements in the same row on the periodic table have periodic that change in a pattern .

72

The atomic number is the number of in an atom .

73

orbit the nucleus of an atom .

74

have properties of both metals and nonmetals .

75

Electrons are charged particles in an atom .

76

Fluorine , chlorine , bromine , and iodine are all part of the family .

77

The atomic nuclei of unstable isotopes release fast - moving particles and energy in a process called .

78

The - of a radioactive isotope is the length of time needed for half of the atoms of a sample to decay .

79

Radioactive isotopes called can be used to detect some medical problems .

80

A piece of paper will provide protection from .

81

The series of electron orbits in ? s model resemble planets orbiting the Sun or the layers of an onion .

82

The modern periodic table is organized according to atomic .

83

The horizontal rows on the periodic table are known as or .

84

Nonmetals can be found on the side of the periodic table .

85

Atoms with the same number of protons and different numbers of neutrons are called .

86

Scientific theories often make use of , which are representations of an idea to help scientists understand what they cannot directly observe .

87

Each element is given a specific that usually consists of one or two letters .

88

A column of elements on the periodic table is called a or a because they have similar characteristic properties .

89

Elements that easily transmit electricity and heat display the property known as .

90

The spontaneous emission of radiation by an unstable atomic nucleus was named by Marie Curie .

91

Mendeleev discovered that periodic patterns appeared when he arranged the elements in order of atomic mass .

92

The property of an element that indicates the number of protons in its atoms is the of that element .

93

The reactivity of metals tends to decrease from left to right across the periodic table .

94

In 1869 , Dmitri Mendeleev created the first version of the .

95

Most metals are in the state or at room temperature .

96

The is the very small center of an atom .

97

Elements known as are located to the right of the metalloids on the periodic table .

98

At room temperature , all the are solids , while many of the are gases .

99

Because radioactive isotopes decay at a predictable rate , the half - life can be used to tell how old a material is by the process of .

100

Two ways a proton and a neutron are similar are they have the same and are both located in the .

101

Atoms are because they have equal numbers of protons and electrons .

102

The mass of a ( n ) is so small that it doesn ? t really change the mass of an atom .

103

When uranium - 238 decays into lead - 206 , the difference between the mass of uranium and lead is 32 amu , while the difference between their atomic numbers is .

104

A ( n ) particle is released when radium decays into radon , while a ( n ) beta particle is released when changing a neutron into a proton when lead decays into bismuth .

105

radiation is always released during any type of radioactive decay .

106

metals react violently with water .

107

metals tend to be less reactive than the families to the left and right of them .

108

is so unique that it could easily be placed in either group 1 or group 17 .

109

Metalloids have properties of both and .

110

The element in group 18 , period 4 is and it would be a gas at room temperature and would not react with other elements .

111

that dissolve in water conduct electricity because they break into ions that move freely .

112

In the electron dot diagrams of lithium , magnesium , boron , carbon , nitrogen , oxygen , fluorine , and neon , how many dots should be drawn around each of the elements ? symbols , respectively ? , , , , , , ,

113

The properties of solid metals can be explained by the of and the bonding among the metal atoms .

114

Orderly crystal shapes , high melting points , and electrical conductivity when dissolved in water are properties of .

115

When electrons are shared between two atoms , a bond is formed .

116

A melting point is one property of covalent compounds .

117

A bond is formed when two atoms share electrons equally .

118

The overall charge on an atom is ; the overall charge on a compound is , making it neutral - the criss - cross balances ( cancels out ) the positive and negative charges .

119

When an atom loses an electron , it becomes a ( n ) charged .

120

A bond is when two pairs of electrons are shared between two atoms . * A bond is when three pairs of electrons are shared between two atoms .

121

Aluminum foil is an example of a metal that is .

122

A chemical bond formed when two atoms share electrons is called a ( n ) bond .

123

Electrons involved in bonding between atoms are valence electrons located from the nucleus in the and sublevels that have a charge .

124

Molecular compounds that dissolve in water do not conduct electricity because no are present . In the chemical formula for an ionic compound , the name of the metallic is written first .

125

A mixture made up of two or more elements , at least one of which is a metal is called a ( n ) .

126

Fluorine is a ( n ) covalent molecule because the valence electrons are shared equally between the two fluorine atoms .

127

Ions that are made of more than one type of atom are examples of .

128

An ionic bond is the attraction between charged ions .

129

A metal crystal consists of charged metal ions embedded in a sea of freely moving .

130

atom ( s ) of a halogen would need to react with one atom of an metal to be stable .

131

Calcium phosphate is an ionic compound with the chemical formula Ca3 ( PO4 ) 2 . The subscript 3 tells the number of ions present , the subscript 4 tells you the number of ions present , and the subscript 2 tells you the number of ions present . The subscript of the ion present is 1 .

132

Because the electrons in a molecule of dihydrogen sulfide are more strongly pulled toward the sulfide atom , the molecule is covalent .

133

The most reactive metals are the metals .

134

Ionic compounds are , crystals .

135

Solid metals are good conductors of energy and .

136

Most molecular compounds have melting points and boiling points .

137

A metal crystal consists of metal surrounded by a sea of .

138

Bonds that form between two nonmetal atoms usually are bonds .

139

When cations form bonds with anions , the charge on the resulting compound is .

140

Ionic compounds are electrically .

141

In order to determine the charge on a metal from groups 3 - 16 , you must the criss - cross and know the charge of the or anion .

142

List the elements in the group containing the least reactive nonmetals from largest radius to smallest radius . Use their symbols with a comma and space in between each element .
, , , , , ,

143

Compounds can have a of bond types .

144

AlB

145

Mg3N

146

Fe2O3 , iron ( )

147

K2SO3

148

Cu ( OH ) 3 ( )

149

C3N2

150

N2O

151

NO2

152

P2Cl6

153

S3F12 heptasulfur

154

Cesium boride

155

Trisilicon octaiodide

156

Aluminum chlorite ( )

157

Tetranitrogen decoxide

158

Iron ( III ) oxalate ( )

159

Manganese ( II ) phosphate Mn3 ( )

160

Hexabromine undecafluoride

161

Lead ( VI ) acetate ( )

162

Dicarbon nonaselenide

163

Calcium pyrophosphate ( )

164

All chemical reactions are accompanied by changes in and form substances with new .

165

In an endothermic reaction , more energy is than is .

166

In an exothermic reaction , more energy is than is .

167

The substances formed during a chemical reaction are called , while substances that are undergoing a chemical change are called .

168

In a ( n ) exothermic reaction , the products have less energy than the .

169

Water boils at 100°C . This is an example of a ( n ) property .

170

The substances that are having their bonds rearranged are the in the reaction .

171

The ability for methane to react with oxygen is a property .

172

Another name for a chemical change is a chemical .

173

In a physical change , some of the physical properties may be altered and the chemical composition same .

174

Boiling water

175

Iron replaces copper in copper ( II ) chloride

176

Sodium chloride dissolves in water

177

2 Colorless liquids yellow precipitate

178

Mirror broken

179

Nail corrodes due to humidity

180

Copper wire is melted

181

Nitrogen dioxide decomposes into N2 gas and O2 gas

182

Hair growing on a rabbit

183

Cold pack reacts and becomes colder

184

In a balanced chemical equation , atoms are .

185

When the equation Al + Br2 ? AlBr3 is balanced , the coefficient for Al is .

186

The reaction in which hydrogen gas and oxygen gas are produced by running an electric current through water is an example of .

187

A reaction that has two compounds as reactants and two compounds as products is most likely .

188

The principle that states that matter is neither created nor destroyed during a chemical reaction is called the Law of .

189

A number written in front of a chemical formula to show the actual number of atoms or molecules is a ( n ) .

190

The production of carbon dioxide gas during the burning of a fuel is an example of a ( n ) reaction .

191

In a chemical equation , the arrow is read as .

192

In a balanced chemical equation for the formation of ammonia ( NH3 ) from nitrogen gas ( N2 ) and hydrogen gas ( H2 ) , the sum of the coefficients is .

193

The formation of a yellow in the reaction between silver nitrate and potassium iodide showed that a chemical reaction had taken place .

194

Increasing the of the reactants will increase the rate of the reaction .

195

The amount of a substance in a given volume is the of the substance .

196

Adding a catalyst to a reaction will decrease the of the reaction .

197

Adding an inhibitor to a reaction will the activation energy of the reaction .

198

In an endothermic reaction , the energy of the products is than the energy of the reactants .

199

In an exothermic reaction , the environment becomes .

200

Any substance that speeds up or slows down a biological chemical reaction is called a ( n ) .

201

Zn + HCl ? ZnCl2 + H2


202

Mg ( OH ) 2 + H2 ( SO4 ) ? Mg ( SO4 ) + H ( OH )

203

C10H22 + 1O2 ? 0CO2 + H2O



204

P + O2 ? P2O5


205

Na3 ( PO4 ) + CaCl2 ? Ca3 ( PO4 ) + NaCl

206

( NH4 ) ( NO3 ) ? N2 + O2 + H2O


207

H2O + O2 ? H2O

S

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