alpha decay and nuclear reactions help

I'm not about to spend the time to do all of the homework for you; however, I will get you started. If you have specific questions about my answers or one of your questions you should post a follow up.
I can't help with #1. Do you have choices for the blank spaces.
To do #2 and most of the others, remember to make the atomic numbers add up on both sides and make the mass number add up on both sides. Here is how you do it for #2.
The upper number is the mass number and is the sum of the protons and neutrons.
The lower number is the atomic number and is the + charge, due to number of protons in the nucleus. Radon is atomic number 86 and mass number 222. So if it ejects an alpha particle, which is a helium atom or 4/2He
.........222/86Rn ==> 4/2He + X. You need to determine what X is and the mass number and atomic number of X. Again, make the upper numbers and lower numbers end up balanced on both sides of th equation.
Note that on the left we have 222. On the right we have 4 + ? = 222 and ? must be 218. On the left we have 86 and on the right we have 2 + ? = 86 so ? must be 84. so we have
..........222/86Rn ==> 4/2He + X. which from the above becomes
..........222/86Rn ==> 4/2He + 218/84X. Now we must determine the element X. It has an atomic number of 84 with a mass number 218. A look at the periodic table tells you element number 84 is Po. The complete equation then becomes
..............222/86Rn ==> 4/2He + 218/84Po
For #4 238 / 92 U -> 234 / 90 Th + ? Just remember, make upper and lower numbers add up. 238/92U -> 234/90Th + 4/2X. So X is the particle with atomic number 2 and mass number of 4 which is an alpha particle.
For #6. 210/? Pb -> ?/83Bi + o/-1e
Look on the periodic table. Pb is 82.
210/82Pb -> ?/83Bi + o/-1e
?/83Bi. That must be 210 = ? + o/-1e so ? must be 210
So 210/82Pb ==> 210/83Bi + o/-1e
Remember that o/-1e us a beta minus particle.
This works three for you and shows how it's done. I'll leave the others for you. Post here if you would like for me to check your answers.

for number one i got radioactive atoms, and then marie curie and the third blank radioactivity.for the rest of the questions there’s blank spots basically a fraction and then a spot for a letter. for number two i got 218 / 84 Po. for three i got 90 / empty Y. for four i got 4 / 2 a. the rest i have not gotten

For #1 I agree that Curie SOUNDS right, especially when the rest of sentence says "she"; however, my understanding is thatHenri Becquerel was given credit for discovering radioactivity. For #3, Sr90 goes to Y90. I worked 2 and 4 for you.

okay thankyou i have answers for all of them now except for the final one. it’s a radioisotope has a half life of three hours how much of a 120g sample remains after 9 hours. and i need to figure out for 3 hours 6 hours and 9 hours

half life of 3 hours means half is gone after three hours; therefore, after 3 hrs you will hve 120/2 = 60. After 6 hrs another half will be gone and after 9 another half will be gone
60/2 = 30
30/2 = ?
This is easy because the problem has times that are even numbers of a half life. If they asked you for how much is left after 3.5 hours it makes it a bit harder. Here is how you do those. First you determine the constant. That is k = 0.693/half life or k = 0.693/3 =0.231, then
ln(No/N) = kt where N is how much is left. No is how much you started with. k is from above. t is time in hrs since the half life is in hrs. So we do 3 hrs.
ln(120/N) = 0.231*3 = 0.693
120/N = 2
120 = 2N and N = 120/2 = 60
Plug in different times of 6 and 9 hrs etc and any other odd number hrs like 3.5 hrs or 11.9 hrs. Good luck.